Process for the production of photocatalytic coatings on substrates
41 claims: 25 independent, 16 dependent
- 1THE CLAIMS DEFINING THE INVENTION ARE AS FOLLOWS:1. A process for the production of a durable photocatalytically active coated glass which comprises depositing on the surface of a glass substrate a 5 photocatalytically active titanium oxide layer having a thickness of less then 40 nm by contacting the surface of the substrate, which is at a temperature in the range 645°C to 720°C, with a fluid mixture containing a source of titanium.
- 6A process for the production of a photocatalytically active coated substrate which comprises depositing a titanium oxide coating having a thickness of less than 40 nm on a substrate by contacting a surface of the substrate with a fluid mixture comprising titanium chloride and an ester other than a methyl ester.
- 15A process as claimed in any one of the preceding claims wherein the process is performed on-line during the float glass production process and the substrate is a glass ribbon.
- 17A process as claimed in any one of the preceding claims wherein the process is performed at substantially atmospheric pressure.
- 18A photocatalytically active coated substrate comprising a substrate having a photocatalytically active titanium oxide coating on one surface thereof, characterised in that the coated surface of the substrate has a photocatalytic 25 activity of greater then 5 x 10' 3 cm' 1 min' 1 and in that the coated substrate has a visible light reflection measured on the coated side of 35% or lower.
- 23A photocatalytically active coated substrate as claimed in any one of claims 18 10 ‘ to 22 wherein the substrate comprises a glass substrate.
- 27A photocatalytically active coated substrate as claimed in claim 26 wherein the photocatalytically active titanium oxide coating has a thickness of 20 nm or lower.
- 32A photocatalytically active coated substrate as claimed in any one of claims 18 to 31 wherein the coated surface of the substrate is durable to abrasion, such that the coated surface remains photocatalytically active after it has been subjected to 300 strokes of the European standard abrasion test. 10
- 36A photocatalytically active coated substrate as claimed in any one of claims 18 to 35 wherein the coated surface of the substrate is durable to humidity cycling such that the coated surface remains photocatalytically active after the coated substrate has been subjected to 200 cycles of the humidity cycling test.
- 37A coated glass comprising a glass substrate as claimed in any one of claims 18 to 36, having a photocatalytically active titanium oxide coating on one surface thereof, characterised in that the coated surface of the glass has a photocatalytic activity of greater than 8 x 10' 2 cm' 1 min 1 and in that the coated glass has a visible light reflection measured on the coated side of less than 20%.
- 41A process for the production of a photocatalytically active coated substrate, a photocatalytically active coated substrate and/or a coated glass substrate 10 substantially as herein described with reference to the examples herein and/or the attached figures.
Independent claims26
297 paragraphs in 49 sections, as filed
The present invention provides, in one embodiment a process for the production of a durable photocatalytically active coated glass which comprises depositing on the surface of a glass substrate a photocatalytically active titanium oxide layer having a
0 thickness of less then 40 nm by contacting the surface of the substrate, which is at a temperature in the range 645°C to 720°C, with a fluid mixture containing a source of titanium.
The present invention also provides, in a further embodiment a process for the production of a photocatalytically active coated substrate which comprises depositing a
5 titanium oxide coating having a thickness of less than 40 nm on a substrate by contacting a surface of the substrate with a fluid mixture comprising titanium chloride and an ester other than a methyl ester.
The present invention also provides in a further embodiment, a process for the production of a photocatalytically active coated substrate which comprises depositing a
0 titanium oxide coating on the surface of a substrate by contacting the surface of the substrate with a fluid mixture containing a source of titanium and a source of oxygen, said substrate being at a temperature of at least 600°C, whereby the coated surface of the substrate has a photocatalytic activity of greater than 5x10' cm' min' and a visible light reflection measured on the coated side of 35% or lower.
5 Preferably, the substrate is at a temperature in the range of 625°C to 720°C, more preferably the substrate is at a temperature in the range 645°C to 720°C.
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2a
Advantageously, the fluid mixture comprises titanium chloride as the source of titanium and an ester other than methyl ester. Thus, in a further embodiment, the present invention provides a process for the production of a photocatalytically active coated substrate which comprises depositing a titanium oxide coating having a thickness of less than 40 nm on a substrate by contacting a surface of the substrate with a fluid mixture comprising titanium chloride and an ester other than a methyl ester
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WO 00/75087
PCT/GBOO/02111
The process may be performed wherein the surface of the substrate is contacted with the fluid mixture when the substrate is at a temperature in the range 600°C to 750°C.
Preferably, the ester is an alkyl ester having an alkyl group with a β hydrogen (the alkyl group of an alkyl ester is the group derived from the alcohol in synthesis of an ester and a β hydrogen is a hydrogen bonded to a carbon atom β to the oxygen of the ether linkage in an ester). Preferably the ester is a carboxylate ester.
Suitable esters may be alkyl esters having a C2 to C10 alkyl group, but preferably the ester is an alkyl ester having a C2 to C4 alkyl group.
Preferably, the ester is a compound of formula:
R - C(O) - O - C(X)(X j - C(Y)(Y j - R’, where R and R’ represent hydrogen or an alkyl group, X, X’. Y and Y’ represent monovalent substituents, preferably alkyl groups or hydrogen atoms and wherein at least one of Y and Y’ represents hydrogen.
Suitable esters that may be used in the process of the present invention include: ethyl formate, ethyl acetate, ethyl propionate, ethyl butyrate, n-propyl formate, n-propyl acetate, n-propyl propionate, n-propyl butyrate, isopropyl formate, isopropyl acetate, isopropyl propionate, isopropyl butyrate, n-butyl formate, n-butyl acetate and t-butyl acetate.
Preferably, the ester comprises an ethyl ester, more preferably the ester comprises ethyl formate, ethyl acetate or ethyl propionate. Most preferably the ester comprises ethyl acetate.
The fluid mixture may be in the form of a liquid, especially dispersed as a fine spray (a process often referred to as spray deposition), but preferably the fluid mixture is a gaseous mixture. A deposition process performed using a gaseous mixture as precursor is often referred to as chemical vapour deposition (CVD). The preferred form of CVD is laminar flow CVD, although turbulent flow CVD may also be used.
The process may be performed on substrates of various dimensions including on sheet substrates, especially on cut sheets of glass, or preferably on-line during the float glass production process on a continuous ribbon of glass. Thus, preferably, the process is performed on-line during the float glass production process and the substrate is a glass ribbon. If the process is performed on line, it is preferably performed on the glass ribbon whilst it is in the float bath.
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An advantage of performing the process on-line is that coatings deposited on-line tend to be durable and in particular to have good abrasion and chemical resistance.
An on-line deposition process is preferably, and other deposition processes may be, performed at substantially atmospheric pressure.
In a particularly preferred embodiment there is provided a process for the production of a durable photocatalytically active coated glass which comprises depositing on the surface of a glass substrate a photocatalytically active titanium oxide layer by contacting the surface of the substrate, which is at a temperature in the range 645°C to 720°C, preferably in the range 670°C to 720°C with a fluid mixture containing a source of titanium.
As noted above, the applicants have found that by depositing the titanium oxide at high temperature, a coating of relatively high photocatalyLic activity for its thickness may be produced and, as coatings of reduced thickness tend to have lower reflection, the invention also provides novel products having an advantageous combination of high photocatalytic activity with moderate or low light reflection.
Thus, the present invention, in another aspect, provides a photocatalytically active coated substrate comprising a substrate having a photocatalytically active titanium oxide coating on one surface thereof, characterised in that the coated surface of the substrate has a photocatalytic activity of greater than 5 x 10'<sup>3</sup> cm'miri<sup>1</sup> and in that the coated substrate has a visible light reflection measured on the coated side of 35% or lower.
High photocatalytic activity is advantageous because the amount of contaminants (including dirt) on the coated surface of the photocatalytically active coated substrate will be reduced quicker than on substrates with relatively low photocatalytic activity. Also, relatively quick removal of surface contaminants will tend to occur at low levels of UV light intensity.
Photocatalytic activity for the purposes of this specification is determined by measuring the rate of decrease of the integrated absorbance of the infra-red absorption peaks corresponding to the C-H stretches of a thin film of stearic acid, formed on the coated substrate, under illumination by UV light from a UVA lamp having an intensity of about 32 W/m<sup>2</sup> at the surface of the coated substrate and a peak wavelength of 351 nm.
The stearic acid may be formed on the coated substrate by spin casting a solution of stearic acid in methanol as described below.
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Preferably, the coated surface of the substrate has a photocatalytic activity of greater than 1 x IO'<sup>2</sup> crri'min more preferably of greater than 3 x IO'<sup>2</sup> cm'min'<sup>1</sup>.
Low visible light reflection is advantageous because it is less distracting than high reflection and, especially for glass substrates, low visible light reflection corresponds to high visible transmission which is often required in architectural and especially automotive applications of glass.
Preferably, the coated substrate has a visible reflection measured on the coated side of 20% or lower more preferably of 17% or lower and most preferably of 15% or lower.
In most embodiments of the invention the substrate will be substantially transparent and in a preferred embodiment of the invention the substrate comprises a glass substrate. Usually the glass substrate will be a soda lime glass substrate.
Where the substrate is a soda lime glass substrate or other alkali metal ion containing substrate, the coated substrate preferably has an alkali metal ion blocking underlayer between the surface of the substrate and the photocatalytically active titanium oxide coating. This reduces the tendency for alkali metal ions from the substrate to migrate into the photocatalytically active titanium oxide coating which is advantageous because of the well known tendency of alkali metal ions to poison semiconductor oxide coatings, reducing their activity.
The alkali metal ion blocking underlayer may comprise a metal oxide but preferably the alkali metal ion blocking layer is a layer of silicon oxide. The silicon oxide may be silica but will not necessarily be stoichiometric and may comprise impurities such as carbon (often referred to as silicon oxycarbide and deposited as described in GB 2,199,848B) or nitrogen (often referred to as silicon oxynitride).
It is advantageous if the alkali metal ion blocking underlayer is thin so that it has no significant effect on the optical properties of the coating, especially by reducing the transparency of a transparent coated substrate or causing interference colours in reflection or transmission. The suitable thickness range will depend on the properties of the material used to form the alkali metal ion blocking layer (especially its refractive index), but usually the alkali metal ion blocking underlayer has a thickness of less than 60 nm and preferably has a thickness of less than 40nm. Where present, the alkali metal ion blocking underlayer should always be thick enough to reduce or block migration of alkali metal ions from the glass into the titanium oxide coating.
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An advantage of the present invention is that the photocatalytically active titanium oxide coating is thin (contributing to the low visible reflection of the coated substrate) but the coated substrate still has excellent photocatalytic activity. Preferably, the titanium oxide coating has a thickness of 30 nm or lower, more preferably the titanium oxide coating has a thickness of 20 nm or lower and most preferably the titanium oxide coating has a thickness in the range 2 nm to about 20 nm.
The present invention is also advantageous because depositing thin titanium oxide coatings requires less precursor and the layers can be deposited in a relatively short time.
A thin titanium oxide coating is also less likely to cause interference colours in reflection or transmission. However, a particular advantage is that the visible light reflection of a thin titanium oxide coating is low which is especially important when the coated substrate is coated glass. Usually the required visible iight transmission of the coated glass will determine the thickness of the titanium oxide coating.
Preferably, the coated surface of the substrate has a static water contact angle of 20° or lower. Freshly prepared or cleaned glass has a hydrophilic surface (a static water contact angle of lower than about 40° indicates a hydrophilic surface), but organic contaminants rapidly adhere to the surface increasing the contact angle. A particular benefit of coated substrates (and especially coated glasses) of the present invention is that even if the coated surface is soiled, irradiation of the coated surface by UV light of the right wavelength will reduce the contact angle by reducing or destroying those contaminants. A further advantage is that water wiii spicau out over the lev.’ contact angle surface reducing the distracting effect of droplets of water on the surface (e.g. from rain) and tending to wash away any grime or other contaminants that have not been destroyed by the photocatalytic activity of the surface. The static water contact angle is the angle subtended by the meniscus of a water droplet on a glass surface and may be determined in a known manner by measuring the diameter of a water droplet of known volume on a glass surface and calculated using an iterative procedure.
Preferably, the coated substrate has a haze of 1% or lower, which is beneficial because this allows clarity of view through a transparent coated substrate.
In preferred embodiments, the coated surface of the substrate is durable to abrasion, such that the coated surface remains photocatalytically active after it has been subjected to 300 strokes of the European standard abrasion test. Preferably, the coated surface remains
Substitute sheet (Rule 26)
WO 00/75087
PCT/GB00/02111 photocatalytically active after it has been subjected to 500 strokes of the European standard abrasion test, and more preferably the coated surface remains photocatalytically active after it has been subjected to 1000 strokes of the European standard abrasion test.
This is advantageous because self-cleaning coated substrates of the present invention will often be used with the coated surface exposed to the outside (e.g. coated glasses with the coated surface of the glass as the outer surface of a window) where the coating is vulnerable to abrasion.
The European standard abrasion test refers to the abrasion test described in European standard BS EN 1096 Part 2 (1999) and comprises the reciprocation of a felt pad at a set speed and pressure over the surface of the sample.
In the present specification, a coated substrate is considered to remain photocatalytically active if, after being subjected to the European abrasion test, irradiation by UV light (e.g. of peak wavelength 351 nm) reduces the static water contact angle to below 15°. To achieve this contact angle after abrasion of the coated substrate will usually take less than 48 hours of irradiation at an intensity of about 32 W/m<sup>2</sup>at the surface of the coated substrate.
Preferably, the haze of the coated substrate is 2% or lower after being subjected to the European standard abrasion test.
Durable coated substrates according to the present invention may also be durable to humidity cycling (which is intended to have a similar effect to weathering). Thus, in preferred embodiments of me invention, uic coated surface of the substrate is durable to humidity cycling such that the coated surface remains photocatalytically active after the coated substrate has been subjected to 200 cycles of the humidity cycling test. In the present specification, the humidity cycling test refers to a test wherein the coating is subjected to a temperature cycle of 35°C to 75°C to 35°C in 4 hours at near 100% relative humidity. The coated substrate is considered to remain photocatalytically active, if, after the test, irradiation by UV light reduces the static water contact angle to below 15°.
In a further preferred embodiment, the present invention provides a durable photocatalytically active coated glass comprising a glass substrate having a coating on one surface thereof, said coating comprising an alkali metal ion blocking underlayer and a photocatalytically active titanium oxide layer, wherein the coated surface of the substrate is durable to abrasion such that the coated surface remains photocatalytically active after it
Substitute sheet (Rule 26)
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PCT/G BOO/02111 has been subjected to 300 strokes of the European standard abrasion test. In this embodiment, the coated glass preferably has a visible light reflection measured on the coated side of 35% or lower, and the photocatalytically active titanium oxide layer preferably has a thickness of 30 nm or lower. Thin coatings are durable to abrasion which is surprising because previously it has been thought that only relatively thick coatings would have good durability.
In a still further embodiment, the present invention provides a coated glass comprising a glass substrate having a photocatalytically active titanium oxide coating on one surface thereof, characterised in that the coated surface of the glass has a photocatalytic activity of greater than 4 x 10’<sup>2</sup>cm'<sup>1</sup>min'<sup>1</sup>, preferably greater than 6 x 10'<sup>2</sup>crri 'min'<sup>1</sup> and more preferably greater than 8 x 10’<sup>2</sup>cm'<sup>l</sup>min'' and in that the coated glass has a visible light reflection measured on the coated side of less than 20%.
Coated substrates according to the present invention have uses in many areas, for example as glazings in windows including in a multiple glazing unit comprising a first glazing pane of a coated substrate in spaced opposed relationship to a second glazing pane, or, when the coated substrate is coated glass, as laminated glass comprising a first glass ply of the coated glass, a polymer interlayer (of, for example, polyvinylbutyral) and a second glass ply.
In addition to uses in self-cleaning substrates (especially self-cleaning glass for windows), coated substrates of the present invention may also be useful in reducing the concentration of atmospheric contaminants. For example, coaied g iH3S under iTTudietion by light of UV wavelengths (including UV wavelengths present in sunlight) may destroy atmospheric contaminants for example, nitrogen oxides, ozone and organic pollutants, adsorbed on the coated surface of the glass. This use is particularly advantageous in the open in built-up areas (for example, in city streets) where the concentration of organic contaminants may be relatively high (especially in intense sunlight), but where the available surface area of glass is also relatively high. Alternatively, the coated glass (with the coated surface on the inside) may be used to reduce the concentration of atmospheric contaminants inside buildings, especially in office buildings having a relatively high concentration of atmospheric contaminants.
The invention is illustrated but not limited by the following drawings.
Substitute sheet (Rule 26) wo 00/75087
PCT/CB00/02111
Figure 1 is a graph of photocatalytic activity of coated glass produced by a process according to the invention as a function of the thickness of the titanium oxide layer.
Figure 2 illustrates apparatus for on line chemical vapour deposition of coatings according to the invention.
In Figure 1 the coated glasses were produced using an on-line CVD process as described in the Examples, below. The open circles 1 relate to titanium oxide layers deposited using titanium tetrachloride as titanium precursor, and the crosses 2 relate to titanium oxide layers deposited using titanium tetraethoxide as titanium precursor.
The layers of the coating may be applied on line onto the glass substrate by chemical vapour deposition during the glass manufacturing process. FIG. 2 illustrates an apparatus, indicated generally at 10, useful for the on line production of the coated glass article of the present invention, comprising a float section 11, a lehr 12, and a cooling section 13. The float section 11 has a bottom 14 which contains a molten tin bath 15, a roof 16, sidewalls (not shown), and end walls 17, which together form a seal such that there is provided an enclosed zone 18, wherein a non-oxidising atmosphere is maintained to prevent oxidation of the tin bath 15. During operation of the apparatus 10, molten glass 19 is cast onto a hearth 20, and flows therefrom under a metering wall 21, then downwardly onto the surface of the tin bath 15, forming a float glass ribbon 37, which is removed by lift-out rolls 22 and conveyed through the lehr 12, and thereafter through the cooling section 13.
A non-oxidising atmosphere is maintained in the float section 11 by introducing a suitable gas, such as for example one comprising iniiogeu and 2% by volume hydrogen, into the zone 18, through conduits 23 which are operably connected to a manifold 24. The non-oxidizing gas is introduced into the zone 18 from the conduits 23 at a rate sufficient to compensate for losses of the gas (some of the non-oxidizing atmosphere leaves the zone 18 by flowing under the end walls 17), and to maintain a slight positive pressure above ambient pressure. The tin bath 15 and the enclosed zone 18 are healed by radiant heat directed downwardly from heaters 25. The heat zone 18 is generally maintained at a temperature of about 1330°F to 1400°F (721°C to 760°C). The atmosphere in the lehr 12 is typically air, and the cooling section 13 is not enclosed. Ambient air is blown onto the glass by fans 26.
The apparatus 10 also includes coaters 27, 28, 29 and 30 located in series in the float zone 11 above the float glass ribbon 37. The precursor gaseous mixtures for the individual
Substitute sheet (Rule 26)
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PCT/GB00/02111 layers of the coating arc supplied to the respective coaters, which in tum direct the precursor gaseous mixtures to the hot surface of the float glass ribbon 37. The temperature of the float glass ribbon 37 is highest at the location of the coater 27 nearest the hearth 20 and lowest at the location of the coater 30 nearest the lehr 12.
The invention is further illustrated by the following Examples, in which coatings were applied by laminar flow chemical vapour deposition in the float bath on to a moving ribbon of float glass during the glass production process. In the Examples two layer coatings were applied to the glass ribbon.
All gas volumes are measured at standard temperature and pressure unless otherwise stated. The thickness values quoted for the layers were determined using high resolution scanning electron microscopy and optical modelling of the reflection and transmission spectra of the coated glass. Thickness of the coatings was measured with an uncertainty of about 5%. The transmission and reflection properties of the coated glasses were determined using an Hitachi U - 4000 spectrophotometer. The a, b and L* values mentioned herein of the transmission and/or reflection colour of the glasses refer to the CIE Lab colours. The visible reflection and visible transmission of the coated glasses were determined using the D65 illuminant and the standard CIE 2°observer in accordance with the ISO 9050 standard (Parry Moon airmass 2) The haze of the coated glasses was measured using a WYK - Gardner Hazeguard+ haze meter.
The photocatalytic activity of the coated glasses was determined from the rate of decrease of the area of the infrared peaks corresponding to C-H stretches of a stearic acid film on the coated surface of the glass under illumination by UVA light. The stearic acid film was formed on samples of the glasses, 7-8 cm square, by spin casting 20 μΐ of a solution of stearic acid in methanol (8.8 x 10'<sup>3</sup> mol dm'<sup>3</sup>) on the coated surface of the glass at 2000 rpm for 1 minute. Infra red spectra were measured in transmission, and the peak height of the peak corresponding to the C-H stretches (at about 2700 to 3000 cm'<sup>1</sup>) of the stearic acid film was measured and the corresponding peak area determined from a calibration curve of peak area against peak height. The coated side of the glass was illuminated with a UVA-351 lamp (obtained from the Q-Panel Co., Cleveland, Ohio, USA) having a peak wavelength of 351 nm and an intensity at the surface of the coated glass of approximately 32 W / m<sup>2</sup>. The photocatalytic activity is expressed in this specification cither as the rate of decrease of the area of the IR peaks (in units of cm'<sup>1</sup> min'<sup>1</sup>) or as tgo%
Substitute sheet (Rule 26)
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HCT/GB00/02111 (in units of min) which is the time of UV exposure taken to reduce the peak height (absorption) of a peak in the wavelength area down to 10% of its initial value.
The static water contact angle of the coated glasses was determined by measuring the diameter of a water droplet (volume in the range 1 to 5 μΐ) placed on the surface of the coated glass after irradiation of the coated glass using the UVA 351 lamp for about 2 hours (or as otherwise specified).
Examples 1-15
A ribbon of I mm thick soda lime float glass advancing at a lehr speed of 300 m/hour was coaLed with a two-layer coating as the ribbon advanced over the float bath at a position where the glass temperature was in the range of about 650°C to about 670°C. The float bath atmosphere comprised a flowing gaseous mixture of nitrogen and 9% hydrogen at a bath pressure of approximately 0.15 mbar.
Layer 1 (the first layer to be deposited on the glass) was a layer of silicon oxide. Layer 1 was deposited by causing a gaseous mixture of monosilane (S1H4, 60 ml/min), oxygen (120 ml/min), ethylene (360 ml/min) and nitrogen (8 litres/min) to contact and flow parallel to the glass surface in the direction of movement of the glass using coating apparatus as described in GB patent specification 1 507 966 (referring in particular to Fig.
and the corresponding description on page 3 line 73 to page 4 line 75) with a path of travel of the gaseous mixture over the glass surface of approximately 0.15 m. Extraction was at approximately 0.9 to 1.2 mbar. The glass ribbon was coated across a width of approximately 10 cm at a point where its temperature was approximately 670°C. The thickness of the silica layer was about 20 to 25 m.
Layer 2 (the second layer to be deposited) was a layer of titanium dioxide. Layer 2 was deposited by combining separate gas streams comprising titanium tetrachloride in flowing nitrogen carrier gas, ethyl acetate in flowing nitrogen carrier gas and a bulk flow of nitrogen of 8 1 / min (flow rate measured at 20 psi) into a gaseous mixture and then delivering (through lines maintained at about 250°C) the gaseous mixture to coating apparatus consisting of an oil cooled dual flow coater. The pressure of the nitrogen carrier and bulk nitrogen gases was approximately 20 pounds per square inch. The gaseous mixture contacted and flowed parallel to the glass surface both upstream and downstream along the glass ribbon. The path of travel of the gaseous mixture downstream was about 0.15 m and upstream was about 0.15 m with extraction of about 0.15 mbar. Titanium
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PCT/GB00/02111 tetrachloride and ethyl acetate were entrained in separate streams of flowing nitrogen carrier gas by passing nitrogen through bubblers containing either titanium tetrachloride or ethyl acetate. The flow rates of the nitrogen carrier gases are described in Table 1 (the flow rates were measured at 20 psi). The titanium tetrachloride bubbler was maintained at a temperature of 69°C and the ethyl acetate bubbler was maintained at a temperature of 42°C. The estimated flow rates of entrained titanium tetrachloride and entrained ethyl acetate are also described in Table 1 for each of the Examples 1 to 15.
The properties of the two-layer coalings were measured. Values of the thickness of layer 2 (the titanium oxide layer), and values of the visible reflection measured on the coated side, L* and haze of the coated glasses are described in Table 2 for the Examples 115. The haze of each coated glass was below 0.2 %.
The photocatalytic activity and static water contact angle of the coated glasses were determined. The initial peak height and initial peak area of the IR peaks corresponding to the stearic acid C-H stretches, the photocatalytic activity, the static water contact angle and t90% for the Examples 1 -15 are described in Table 3. The thickness of the titanium oxide layer, surprisingly has little effect on photocatalytic activity.
Examples 16-19
Examples 16-19 were conducted under the same conditions as Examples 1-15 except that the bath pressure was approximately 0.11 mbar, extraction for deposition of the silica undercoat (layer I) was approximately 0.7 mbar, the titanium tetrachloride bubbler was maintained at a temperature of approximately iClirC, the etnyi acetate bubbier was maintained at a temperature of approximately 45°C and the delivery lines were maintained at a temperature of approximately 220°C.
The flow rates of nitrogen carrier gas, and the estimated flow rates of entrained titanium tetrachloride and entrained ethyl acetate are disclosed for each of the examples 16-19 in Table 1.
Values of the estimated thickness of layer 2 (the titanium oxide layer), and values of visible reflection measured on the coated side, L* and haze of the coated glasses are described in Table 2 for each of the Examples 16-19.
The initial peak height and initial peak area of the IR peaks corresponding to the stearic acid C-H stretches, the photocatalytic activity, (90% and the static water contact angle and for each of the Examples 16-19 are described in Table 3.
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The photocatalytic activity of the Examples 16-19 was not substantially greater than that of the Examples 1-15 despite the thicker titanium oxide (and hence more reflective) coatings.
Substitute sheet (Rule 26)
TABLE 1
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<td> Example</td><td colspan="2"> Nitrogen Carrier Gas Flow Rates to Bubblers (1 / min, measured at 20 psi)</td><td rowspan="2"> T1CI4 flow rate (1 / min)</td><td rowspan="2"> Ethyl Acetate flow rate (1 / min)</td>
<td></td><td> T1CI4 Bubbler</td><td> Ethyl Acetate Bubbler</td>
<td> I</td><td> 0.16</td><td> 1</td><td> 0.032</td><td> 0.46</td>
<td> 2</td><td> 0.12</td><td> 0.3</td><td> 0.024</td><td> 0.14</td>
<td> 3</td><td> 0.12</td><td> 0.45</td><td> 0.024</td><td> 0.21</td>
<td> 4</td><td> 0.08</td><td> 0.2</td><td> 0.016</td><td> 0.09</td>
<td> 5</td><td> 0.12</td><td> 0.15</td><td> 0.024</td><td> 0.07</td>
<td> 6</td><td> 0.12</td><td> 0.75</td><td> 0.024</td><td> 0.35</td>
<td> 7</td><td> 0.08</td><td> 0.3</td><td> 0.016</td><td> 0.14</td>
<td> 8</td><td> 0.08</td><td> 0.5</td><td> 0.016</td><td> 0.23</td>
<td> 9</td><td> 0.04</td><td> 0.1</td><td> 0.008</td><td> 0.05</td>
<td> 10</td><td> 0.04</td><td> 0.15</td><td> 0.008</td><td> 0.07</td>
<td> 11</td><td> 0.04</td><td> 0.25</td><td> 0.008</td><td> 0.12</td>
<td> 12</td><td> 0.16</td><td> 0.1</td><td> 0.032</td><td> 0.05</td>
<td> 13</td><td> 0.08</td><td> 0.1</td><td> 0.016</td><td> 0.05</td>
<td> 14</td><td> 0.16</td><td> 0.4</td><td> 0.032</td><td> 0.19</td>
<td> 15</td><td> 0.16</td><td> 0.2</td><td> 0.032</td><td> 0.09</td>
<td> 16</td><td> 0.1</td><td> 0.5</td><td> 0.088</td><td> 0.27</td>
<td> 17</td><td> 0.08</td><td> 0.4</td><td> 0.070</td><td> 0.22</td>
<td> 18</td><td> 0.06</td><td> 0.3</td><td> 0.053</td><td> 0.16</td>
<td> 19</td><td> 0.04</td><td> 0.2</td><td> 0.035 |</td><td> 0.11</td>
Substitute sheet (Rule 26)
TABLE 2
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<td> Example</td><td> Thickness of titanium oxide layer (nm)</td><td> Visible reflection of coated glass (%)</td><td> L* value of coated glass (%)</td><td> Haze (%)</td>
<td> 1</td><td> 15</td><td> 14.1</td><td> 44</td><td> 0.12</td>
<td> 2</td><td> 14.3</td><td> 13.9</td><td> 44</td><td> 0.07</td>
<td> 3</td><td> 14.2</td><td> 13.2</td><td> 43</td><td> 0.12</td>
<td> 4</td><td> 11.3</td><td> 11.4</td><td> 40</td><td> 0.08</td>
<td> 5</td><td> 12.1</td><td> 12.1</td><td> 41</td><td> 0.08</td>
<td> 6</td><td> 11.0</td><td> a</td><td> a</td><td> 0.07</td>
<td> 7</td><td> 8</td><td> a</td><td> a</td><td> 0.11</td>
<td> 8</td><td> 7.2</td><td> 9.7</td><td> 37</td><td> 0.04</td>
<td> 9</td><td> 6.1</td><td> 9.1</td><td> 36</td><td> 0.05</td>
<td> 10</td><td> 5.6</td><td> 9</td><td> 36</td><td> 0.07</td>
<td> 11</td><td> 4.6</td><td> 8.7</td><td> 35</td><td> 0.06</td>
<td> 12</td><td> 15.6</td><td> 15.4</td><td> 46</td><td> 0.1</td>
<td> 13</td><td> 16.0</td><td> a</td><td> a</td><td> 0.13</td>
<td> 14</td><td> 17.5</td><td> 16.2</td><td> 47</td><td> 0.14</td>
<td> 15</td><td> 20.3</td><td> 19.5</td><td> 51</td><td> 0.1</td>
<td> 16</td><td> a</td><td> 28.4</td><td> 47.8</td><td> 0.3</td>
<td> 17</td><td> ca 68</td><td> 29.1</td><td> 58.4</td><td> 0.37</td>
<td> 18</td><td> ca 32</td><td> 25.9</td><td> 55.6</td><td> 0.24</td>
<td> 19</td><td> ca 27</td><td> 20.5</td><td> 50.2</td><td> 0.2</td>
No! mC2£’J<sup>rfi</sup>d
Substitute sheet (Rule 26)
TABLE 3
WO 00/75087
PCT/GB00/02111
<td rowspan="2"> Example</td><td colspan="2"> IR Peaks corresponding to stearic acid film C-H stretches (2700 - 3000 cm'<sup>1</sup>)</td><td rowspan="2"> Photocatalytic Activity (x 10’<sup>2</sup> cm'<sup>1 </sup>min'<sup>1</sup>)</td><td rowspan="2"> Static Water Contact Angle (°)</td><td rowspan="2"> t90% (min)</td>
<td> Initial Peak Height (arbitrary units)</td><td> Initial Peak Area (cm<sup>1</sup>)</td>
<td> 1</td><td> 0.030</td><td> 1.04</td><td> 9.4</td><td> 17 + 5</td><td> 10</td>
<td> 2</td><td> 0.0331</td><td> 1.15</td><td> 10.4</td><td> 15 ± 1</td><td> 10</td>
<td> 3</td><td> 0.0311</td><td> 1.08</td><td> 12.2</td><td> 13 ± 2</td><td> 8</td>
<td> 4</td><td> 0.0324</td><td> 1.13</td><td> 6.8</td><td> 14± 1</td><td> 15</td>
<td> 5</td><td> 0.0287</td><td> 1.00</td><td> 8.2</td><td> 16 ± 3</td><td> 11</td>
<td> 6</td><td> 0.028</td><td> 0.98</td><td> 8.8</td><td> 15± 1</td><td> 10</td>
<td> 7</td><td> 0.0343</td><td> 1.20</td><td> 10.8</td><td> 15 ± 1</td><td> 10</td>
<td> 8</td><td> 0.0289</td><td> 1.03</td><td> 6.6</td><td> 16± 1</td><td> 14</td>
<td> 9</td><td> 0.0289</td><td> 1.01</td><td> 6.5</td><td> 14 ±2</td><td> 14</td>
<td> 10</td><td> 0.0278</td><td> 0.97</td><td> 6.2</td><td> 18±2</td><td> 14</td>
<td> 11</td><td> 0.0344</td><td> 1.20</td><td> 5.4</td><td> 18 + 1</td><td> 20</td>
<td> 12</td><td> 0.0291</td><td> 1.02</td><td> 10.2</td><td> 12 ± 1</td><td> 9</td>
<td> 13</td><td> 0.0289</td><td> 1.01</td><td> 9.1</td><td> 14 ±2</td><td> 10</td>
<td> 14</td><td> 0.0269</td><td> 0.94</td><td> 9.4</td><td> 15 ± 2</td><td> 9</td>
<td> 15</td><td> 0.0331</td><td> 1.15</td><td> 8.7</td><td> 15 + 2</td><td> 12</td>
<td> 16</td><td> 0.0227</td><td> 0.79</td><td> 17.8</td><td> 12</td><td> 4</td>
<td> 17</td><td> 0.026</td><td> 0.91</td><td> 10.2</td><td> 12</td><td> 8</td>
<td> 18</td><td> 0.0225</td><td> 0.79</td><td> 10.1</td><td> 13</td><td> 7</td>
<td> 19</td><td> 0.0258</td><td> 0.90</td><td> 10.1</td><td> 16</td><td> 8</td>
Substitute sheet (Rule 26)
WO 00/75087
PCT/GB00/02111
Examples 20-27
The Examples 20-27 were conducted under the same conditions as Examples 1-15 except that layer 2 was deposited from a gaseous mixture comprising titanium tetraethoxide entrained in nitrogen carrier gas by passing the carrier gas through a bubbler containing titanium tetraethoxide maintained at a temperature of 170°C. The flow rates of nitrogen carrier gas (measured at 20 psi) and titanium tetraethoxide are described in Table 4 for each of the Examples 20-27. The flow rate of bulk nitrogen gas was 8.5 l/min (measured at 20 psi).
The properties of the two-layer coatings were measured. Values of the thickness of layer 2 (the titanium oxide layer), and values of the visible reflection measured on the coated side and haze of the coated glasses are described in Table 5 for the Examples 20-27. The haze of each coated glass was below 0.7%.
The photocatalytic activity and static water contact angle of the coated glasses were determined. The initial peak height and initial peak area of the IR peaks corresponding to the stearic acid C-H stretches, the photocatalytic activity and t9o%, and the static water contact angle for each of the Examples 20-27 are described in Table 6.
Examples 28 and 29
The Examples 28 and 29 were conducted under the same conditions as Examples 2027 except that the titanium tetraethoxide bubbler was maintained at a temperature of 168°C and the bath pressure was 0.11 mbar. Data relating to Examples 28-29 equivalent to data for Examples 20-27 are described in Tables 4, 5 and 6.
Substitute sheet (Rule 26)
TABLE 4
WO 00/75087
PCT/GB00/O2111
<td> Example</td><td> Nitrogen Carrier Gas Flow Rates to Titanium tetraethoxide bubbler (I I min, measured at 20 psi)</td><td> Titanium ethoxide flow rate (1 / min)</td>
<td> 20</td><td> 0.25</td><td> 0.014</td>
<td> 21</td><td> 0.15</td><td> 0.008</td>
<td> 22</td><td> 0.2</td><td> 0.011</td>
<td> 23</td><td> 0.25</td><td> 0.014</td>
<td> 24</td><td> 0.3</td><td> 0.017</td>
<td> 25</td><td> 0.35</td><td> 0.019</td>
<td> 26</td><td> 0.2</td><td> 0.011</td>
<td> 27</td><td> 0.1</td><td> 0.006</td>
<td> 28</td><td> 0.6</td><td> 0.030</td>
<td> 29</td><td> 0.4</td><td> 0.020</td>
TABLE 5
<td> Example</td><td> Thickness of titanium oxide layer (nm)</td><td> Visible reflection of coated glass (%)</td><td> Haze (%)</td>
<td> 20</td><td> 13</td><td> a</td><td> 0.4</td>
<td> 21</td><td> 13</td><td> a</td><td> 0.29</td>
<td> 22</td><td> 16</td><td> 15.7</td><td> 0.29</td>
<td> 23</td><td> 18</td><td> a</td><td> 0.28</td>
<td> 24</td><td> 24</td><td> a</td><td> a</td>
<td> 25</td><td> 26</td><td> a</td><td> 0.61</td>
<td> 26</td><td> 9.9</td><td> 10.9</td><td> 0.19</td>
<td> 27</td><td> 4.7</td><td> 8.8</td><td> 0.29</td>
<td> 28</td><td> 38.3</td><td> 35.2</td><td> 0.29</td>
<td> 29</td><td> 31.9</td><td> 28.4</td><td> 0.22</td>
a Not measured
Substitute sheet (Rule 26)
WO 00/75087
PCT/GB00/02111
TABLE 6
<td rowspan="2"> Example</td><td colspan="2"> IR Peaks corresponding to stearic acid film C-H stretches (2700 - 3000 cm<sup>1</sup>)</td><td rowspan="2"> Photocatalytic Activity (x 10'<sup>2</sup> cm <sup>1 </sup>min'<sup>1</sup>)</td><td rowspan="2"> Static Water Contact Angle (°)</td><td rowspan="2"> <90% (min)</td>
<td> Initial Peak Height (arbitrary units)</td><td> Initial Peak Area (cm'<sup>1</sup>)</td>
<td> 20</td><td> 0.027</td><td> 0.953</td><td> 5.7</td><td> 19+5</td><td> 15</td>
<td> 21</td><td> 0.031</td><td> 1.095</td><td> 5.7</td><td> a</td><td> 17</td>
<td> 22</td><td> 0.024</td><td> 0.838</td><td> 3.6</td><td> 15+2</td><td> 21</td>
<td> 23</td><td> 0.030</td><td> 1.029</td><td> 7.1</td><td> 11+3</td><td> 13</td>
<td> 24</td><td> 0.029</td><td> 1.015</td><td> 7</td><td> 17±3</td><td> 13</td>
<td> 25</td><td> 0.031</td><td> 1.071</td><td> 7.4</td><td> 13+4</td><td> 13</td>
<td> 26</td><td> 0.031</td><td> 1.085</td><td> 4.4</td><td> 21±3</td><td> 22</td>
<td> 27</td><td> 0.029</td><td> 0.998</td><td> 3.2</td><td> 16+5</td><td> 28</td>
<td> 28</td><td> 0.021</td><td> 0.733</td><td> 3.6</td><td> 13</td><td> 18</td>
<td> 29</td><td> 0.024</td><td> 0.848</td><td> 3.3</td><td> 14</td><td> 23</td>
a Not measured
Substitute sheet (Rule 26)
WO 00/75087
PCT/GB00/02111
Examples 30-42
In Examples 30 to 42, two-layer coatings were applied by on line CVD to a float glass ribbon across its full width of approximately 132 inches (3.35m) in the float bath during the float glass production process. The apparatus used to deposit the coating is illustrated in Figure 2. The float bath atmosphere comprised nitrogen and 2% by volume hydrogen. Bath pressure was 0.15 mbar.
The two layer coating consisted of a silicon oxide layer deposited first on the float glass ribbon and titanium oxide layer deposited on to the silicon oxide layer. The precursor chemistry of the gaseous mixtures used to deposit the coating was the same as that used in Examples 1-15. The temperature of deposition of the layers was varied by using different coaters 27. 28, 29 or 30 (referring to Figure 2). Coater 27 located nearest the hearth being hottest and coater 30 located nearest the lehr being coolest. In Examples 30-33 and 42 two coaters (28 and 29 in Examples 30-33 and coaters 27 and 28 in Example 42) were used to deposit the silicon oxide coating. The benefit of using two coaters to deposit the silicon oxide layer is that longer production run times are possible.
The gaseous mixture used to deposit the silicon oxide layer for Examples 30 to 41 consisted of the following gases at the following flow rates: helium (250 1/min), nitrogen (285 1/min), monosilane (2.5 1/min), ethylene (15 1/min) and oxygen (10 I/min). For Example 42, the same gases and flow rates were used except for monosilane (2.3 I/min), ethylene (13.8 1/min) and oxygen (9.2 1/min). Where two coaters were used to deposit the silicon oxide layer in Examples 30 io 42, ilic above Row rates were used for each coater.
In Examples 30-42 the deposition temperatures (i.e. the temperature of the float glass ribbon under the coater corresponding to each of the coaters 27-30) was as indicated in Table 7. The temperatures in Table 7 have an uncertainty of about + 50°F (+ 28°C).The extraction for each coater was at approximately 2 mbar.
TABLE 7
<td> Coater</td><td> Approx. Temperature of Glass Ribbon</td>
<td> 27</td><td> 1330°F (721°C)</td>
<td> 28</td><td> 1275°F (690°C)</td>
<td> 29</td><td> 1250°F(677°C)</td>
<td> 30</td><td> 1150°F (621 °C)</td>
Substitute sheet (Rule 26)
WO 00/75087
PCT/GB00/02111
Titanium tetrachloride (TiCL) and ethyl acetate were entrained in separate nitrogen/helium carrier gas streams. For the evaporation of TiCL a thin film evaporator was used. The liquid TiCL was held in a pressurised container (head pressure approx 5 psi). This was used to deliver the liquid to a metering pump and Coriolis force flow measurement system. The metered flow of the precursor was then fed into a thin film evaporator at a temperature of 110°F (43°C). The TiCL was then entrained in the carrier gas (helium) and delivered to the mixing point down lines held at 250°F (121°C). The ethyl acetate was delivered in a similar way. The liquid ethyl acetate was held in a pressurised container (head pressure approx 5 psi). This was used to deliver the liquid to a metering pump and Coriolis force flow measurement system. The metered flow of the precursor was then fed into a thin film evaporator at a temperature of 268°F (131°C). The evaporated ethyl acetate was then entrained in the carrier gas (helium/nitrogen mixture) and delivered to the mixing point down lines held at approximately 250°F (121°C).
The TiCL and ethyl acetate gas streams were combined to form the gaseous mixture used to deposit the titanium oxide layer. This mixing point was just prior to the coater.
The line speed of the float glass ribbon, the temperature of deposition of the silicon oxide and temperature of deposition of the titanium oxide layers and the flow rates of the He/N2 bulk carrier gas and the flow rate of TiCL and ethyl acetate are described for Examples 30-42 in Table 8.
The coated float glass ribbon was cooled and cut and the optical properties and photocatalytic activity of samples determined. Table 9 describes the haze, optical properties in transmission and reflection (visible percent transmission/reflection and colour co-ordinates using the LAB system) of the samples. The coated glasses were subjected to abrasion testing in accordance with BS EN 1096, in which a sample of size 300mm x 300mm is fixed rigidly, at the four comers, to the test bed ensuring that no movement of the sample is possible. An unused felt pad cut to the dimensions stated in the standard (BS EN 1096 Part 2 (1999)) is then mounted in the test finger and the finger lowered to the glass surface. A load pressure on the test finger of 4N is then set and the test started. The finger is allowed to reciprocate across the sample for 500 strokes at a speed of 60 strokes/min ± 6 strokes/min. Upon completion of this abrasion the sample is removed and inspected optically and in terms of photocatalytic activity. The sample is deemed to have passed the test if the abrasion results in a change in transmission of no more than ±5%
Substitute sheet (Rule 26)
WO 00/75087
PCT/GB00/02111 when measured at 550nm and the coated substrate remains photocatalytically active which means that, after the test irradiation by UV light for 2 hours reduces the static water contact angle to below 15°.
The glasses were also subjected to a humidity cycling test in which the coating is subjected to a temperature cycle of 35<sup>c</sup>C to 75°C to 35°C in 4 hours at near 100% relative humidity.
The static water contact angle of the coated glasses as produced and after 130 minutes of UV irradiation (U VA 351 mm lamp at approximately 32 W/m<sup>2</sup>) and after 300, 500 and/or 1000 strokes of the European standard abrasion test described in Table 10. The contact angle of the abraded samples was determined after irradiation for 2 hours.
The samples deposited at the higher temperatures of 1330-1250°F (721°C to 677°C) were photocatalytically active even after 1000 European standard abrasion strokes or after 200 humidity cycles. The photocatalytic activity in terms of tgo% of the coated glasses as produced and after 300, 500 and/or 1000 strokes of the European standard abrasion test and after 200 humidity testing cycles are described in Table 11. In Table 11, the term Active indicates that the coated glasses were photocatalytically active but that tgo% was not determined.
Substitute sheet (Rule 26)
TABLE 8
Substitute sheet (Rule 26)
<td> Example</td><td> Line- Speed (m/min)</td><td rowspan="2"> Silica layer Deposition Temperature/°C</td><td colspan="5"> Titanium Oxide Layer</td>
<td></td><td></td><td> Deposition Temperature /°C</td><td colspan="2"> Flow Rates of Carrier Gases</td><td colspan="2"> Flow Rates of Precursors</td>
<td></td><td></td><td></td><td></td><td> He L/min</td><td> N2 L/min</td><td> TiCL cc/min</td><td> Ethyl Acetate cc/min</td>
<td> 30</td><td> 10.9</td><td colspan="2"> 690 & 677 621</td><td> 300</td><td> 300</td><td> 6.3</td><td> 16.3</td>
<td> 31</td><td> 10.9</td><td> 690 & 677</td><td> 621</td><td> 300</td><td> 300</td><td> 6.3</td><td> 16.3</td>
<td> 32</td><td> 10.9</td><td> 690 & 677</td><td> 621</td><td> 300</td><td> 300</td><td> 6.3</td><td> 16.3</td>
<td> 33</td><td> 10.9</td><td> 690 & 677</td><td> 621</td><td> 300</td><td> 300</td><td> 6.3</td><td> 16.3</td>
<td> 34</td><td> 10.9</td><td> 690</td><td> 621</td><td> 300</td><td> 300</td><td> 6</td><td> 16</td>
<td> 35</td><td> 10.9</td><td> 690</td><td> 621</td><td> 300</td><td> 300</td><td> 6</td><td> 16</td>
<td> 36</td><td> 10.9</td><td> 690</td><td> 621</td><td> 300</td><td> 300</td><td> 6</td><td> 16</td>
<td> 37</td><td> 10.9</td><td> 690</td><td> 677</td><td> 300</td><td> 300</td><td> 5.5</td><td> 14.7</td>
<td> 38</td><td> 10.9</td><td> 690</td><td> 677</td><td> 300</td><td> 300</td><td> 5.5</td><td> 14.7</td>
<td> 39</td><td> 10.9</td><td> 690</td><td> 677</td><td> 300</td><td> 300</td><td> 5.5</td><td> 14.7</td>
<td> 40</td><td> 10.9</td><td> 690</td><td> 677</td><td> 300</td><td> 300</td><td> 5.5</td><td> 14.7</td>
<td> 41</td><td> 6.5</td><td> 721</td><td> 690</td><td> 300</td><td> 300</td><td> 4</td><td> 10.7</td>
<td> 42</td><td> 12.1</td><td> 721 &690</td><td> 677</td><td> 300</td><td> 300</td><td> 9.5</td><td> 25.4</td>
WO 00/75087
O
H f5 co ©
© ©
TABLE 9
Substitute sheet (Rule 26)
<td rowspan="2"> Example</td><td colspan="4"> Film Side Reflection</td><td colspan="4"> Transmission</td><td rowspan="2"> Haze (%)</td>
<td> R(%)</td><td> L*</td><td> a</td><td> b</td><td> T(%)</td><td> L*</td><td> a</td><td> b</td>
<td> 30</td><td> 14.2</td><td> 44.5</td><td> 0.3</td><td> -10.3</td><td> 84.3</td><td> 93.6</td><td> -1.2</td><td> 3.6</td><td> 0.11</td>
<td> 31</td><td> 14.6</td><td> 45.1</td><td> 0.3</td><td> -10.4</td><td> 84.5</td><td> 93.7</td><td> -1.1</td><td> 3.4</td><td> 0.30</td>
<td> 32</td><td> 14.6</td><td> 45.1</td><td> 0.3</td><td> -10.5</td><td> 84.3</td><td> 93.6</td><td> -1.1</td><td> 3.6</td><td> 0.12</td>
<td> 33</td><td> 13.8</td><td> 44.0</td><td> 0.3</td><td> -9.8</td><td> 85.5</td><td> 94.1</td><td> -1.1</td><td> 2.9</td><td> 0.15</td>
<td> 34</td><td> 13.6</td><td> 43.7</td><td> 0.1</td><td> -8.7</td><td> 84.8</td><td> 93.8</td><td> -1.1</td><td> 2.7</td><td> 0.12</td>
<td> 35</td><td> 13.8</td><td> 43.9</td><td> 0.1</td><td> -8.8</td><td> 85.4</td><td> 94.1</td><td> -1.1</td><td> 2.6</td><td> 0.11</td>
<td> 36</td><td> 12.9</td><td> 42.6</td><td> 0.1</td><td> -8.2</td><td> 85.8</td><td> 94.2</td><td> -1.1</td><td> 2.5</td><td> 0.14</td>
<td> 37</td><td> 12.6</td><td> 42.2</td><td> 0.1</td><td> -7.9</td><td> 86.1</td><td> 94.4</td><td> -1.1</td><td> 2.3</td><td> 0.08</td>
<td> 38</td><td> 11.9</td><td> 41.0</td><td> 0.1</td><td> -6.9</td><td> 87.1</td><td> 94.8</td><td> -1.1</td><td> 1.7</td><td> 0.07</td>
<td> 39</td><td> 11.5</td><td> 40.4</td><td> 0.0</td><td> -6.5</td><td> 87.2</td><td> 94.8</td><td> -1.1</td><td> 1.8</td><td> 0.10</td>
<td> 40</td><td> 11.6</td><td> 40.6</td><td> 0.0</td><td> -6.6</td><td> 86.9</td><td> 94.7</td><td> -1.1</td><td> 1.8</td><td> 0.08</td>
<td> 41</td><td> a</td><td> a</td><td> a</td><td> a</td><td> a</td><td> a</td><td> a</td><td> a</td><td> a</td>
<td> 42</td><td> 14</td><td> 44.3</td><td> 0.1</td><td> -9.9</td><td> 84.8</td><td> 93.8</td><td> -1.1</td><td> 3.1</td><td> 0.14</td>
a Not Measured
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Γ)
Ω ffl o
bJ
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TABLE 10
<td rowspan="2"> Example</td><td colspan="5"> Static Water Contact Angle (°) after Number of Abrasion Strokes</td>
<td> 0</td><td> 0 (after irradiation 130 min UV)</td><td> 300</td><td> 500</td><td> 1000</td>
<td> 30</td><td> 2.3</td><td> 3.3</td><td> failed</td><td></td><td></td>
<td> 31</td><td> 2.0</td><td> 3.2</td><td> failed</td><td></td><td></td>
<td> 32</td><td> a</td><td> a</td><td> failed</td><td></td><td></td>
<td> 33</td><td> 2.0</td><td> 3.2</td><td> failed</td><td></td><td></td>
<td> 34</td><td> a</td><td> a</td><td> failed</td><td></td><td></td>
<td> 35</td><td> 2.0</td><td> 3.2</td><td> failed</td><td></td><td></td>
<td> 36</td><td> 2.1</td><td> 3.4</td><td> failed</td><td></td><td></td>
<td> 37</td><td> 2.2</td><td> 3.3</td><td></td><td> <15</td><td></td>
<td> 38</td><td> 2.0</td><td> 3.1</td><td></td><td> <15</td><td></td>
<td> 39</td><td> 1.9</td><td> 3.1</td><td></td><td> <15</td><td></td>
<td> 40</td><td> 2.2</td><td> 3.2</td><td></td><td> <15</td><td></td>
<td> 41</td><td> 7.8</td><td> 7.8</td><td></td><td></td><td> 10.1</td>
<td> 42</td><td> 4.7-5.3</td><td> 4.7 - 5.3</td><td></td><td></td><td> 5.6-9.8</td>
a Not measured
Substitute sheet (Rule 26)
TABLE 11
<td rowspan="2"> Example</td><td colspan="4"> t<sub>90</sub>% (min) after Number of Abrasion Strokes</td><td rowspan="2"> t<sub>9</sub>o% (min) after 200 Humidity Cycles</td>
<td> 0</td><td> 300</td><td> 500</td><td> 1000</td>
<td> 30</td><td> 7.5</td><td> failed</td><td></td><td></td><td> failed</td>
<td> 31</td><td> 18.5</td><td> failed</td><td></td><td></td><td> failed</td>
<td> 32</td><td> 8.5</td><td> failed</td><td></td><td></td><td> failed</td>
<td> 33</td><td> 8</td><td> failed</td><td></td><td></td><td> failed</td>
<td> 34</td><td> 21</td><td> failed</td><td></td><td></td><td> failed</td>
<td> 35</td><td> 4</td><td> failed</td><td></td><td></td><td> failed</td>
<td> 36</td><td> 8.5</td><td> failed</td><td></td><td></td><td> failed</td>
<td> 37</td><td> 15.5</td><td></td><td> Ca. 2160</td><td></td><td> Active</td>
<td> 38</td><td> 18.5</td><td></td><td> Ca. 2160</td><td></td><td> Active</td>
<td> 39</td><td> 17</td><td></td><td> Ca. 2160</td><td></td><td> Active</td>
<td> 40</td><td> 18.5</td><td></td><td> Ca. 2160</td><td></td><td> Active</td>
<td> 41</td><td> a</td><td></td><td></td><td> Ca. 2160</td><td> Active</td>
<td> 42</td><td> 45</td><td></td><td></td><td> 2800</td><td> Active</td>
a Not measured
In the claims which follow and in the preceding description of the invention, except where the context requires otherwise due to express language or necessary implication, the word “comprise” or variations such as “comprises” or “comprising” is used in an inclusive sense, i.e. to specify the presence of the stated features but not to preclude the presence or addition of further features in various embodiments of the invention.
\\melb_files\home$\ARymer\Keep\Speci\CAE\S0924-00.doc 10/06/04
Contents49
3 sheets
Sheet 1 Sheet 2 Sheet 3
Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| WO9806675A1 | Cites | World Intellectual Property Organization (WIPO) | Search report |
| WO9841480A1 | Cites | World Intellectual Property Organization (WIPO) | Search report |
45 members in 23 offices
Priority claims8
| Document | Office | Kind | Date |
|---|---|---|---|
| 9913315 | United Kingdom | A | |
| 9913315 | United Kingdom | A | |
| 0002111 | United Kingdom | W | |
| 0002111 | United Kingdom | W | |
| 9913315 | – | – | – |
| GB19990013315 | – | – | – |
| WO0075087 | – | – | – |
| WO2000GB02111 | – | – | – |
Members45
| Document | Office | Kind | |
|---|---|---|---|
| CA2375662A1 | Canada | A1 | |
| WO0075087A1 | World Intellectual Property Organization (WIPO) | A1 | |
| AU5092400A | Australia | A | |
| BR0011382A | Brazil | A | |
| KR20020026874A | Republic of Korea | A | |
| EP1198431A1 | European Patent Office (EPO) | A1 | |
| CN1354732A | China | A | |
| TR2001003541T2 | Türkiye | T2 | |
| TR200103541T2 | Türkiye | T2 | |
| EA200200002A1 | Eurasian Patent Organization (EAPO) | A1 | |
| IL146661A0 | Israel | A0 | |
| AR024312A1 | Argentina | A1 | |
| HK1044328A | Hong Kong, China | A | |
| HK1044328A1 | Hong Kong, China | A1 | |
| EP1254870A2 | European Patent Office (EPO) | A2 | |
| EP1254870A3 | European Patent Office (EPO) | A3 | |
| JP2003501338A | Japan | A | |
| US2003064231A1 | United States of America | A1 | |
| HU0203433A2 | Hungary | A2 | |
| HUP0203433A2 | Hungary | A2 | |
| ZA200109801B | South Africa | B | |
| PL352478A1 | Poland | A1 | |
| MXPA01012578A | Mexico | A | |
| CZ20014395A3 | Czechia | A3 | |
| TW591116B | Taiwan Province of China | B | |
| AU775906B2This record | Australia | B2 | |
| EA004759B1 | Eurasian Patent Organization (EAPO) | B1 | |
| US6840061B1 | United States of America | B1 | |
| US6929862B2 | United States of America | B2 | |
| IL146661A | Israel | A | |
| UA74550C2 | Ukraine | C2 | |
| US2006019104A1 | United States of America | A1 | |
| MY125239A | Malaysia | A | |
| SA00210544B1 | Saudi Arabia | B1 | |
| SA1419B1 | Saudi Arabia | B1 | |
| KR20070068488A | Republic of Korea | A | |
| KR100783308B1 | Republic of Korea | B1 | |
| AR059303A2 | Argentina | A2 | |
| CN101219861A | China | A | |
| SA05260312B1 | Saudi Arabia | B1 | |
| SA2064B1 | Saudi Arabia | B1 | |
| CA2375662C | Canada | C | |
| JP4716631B2 | Japan | B2 | |
| EP1198431B1 | European Patent Office (EPO) | B1 | |
| EP1254870B1 | European Patent Office (EPO) | B1 |
2 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Patent ceased section 143(a) (annual fees not paid) or expiredExpiredMK14 | MK14 | |
| Change of applicant's name (sec. 104)TC | TC |
Numbers
- Publication, DOCDB
- 775906
- Publication, EPODOC
- AU775906B
- Application
- 50924
- Application, DOCDB
- 5092400
- Application, EPODOC
- AU20000050924
Titles
- English
- Process for the production of photocatalytic coatings on substrates
Classification
- CPC, 6
- C03C17/2456
- C23C16/405
- C03C17/3417
- C03C2217/212
- C03C2217/71
- C03C2218/152
- IPC, 7
- B01J21 06
- B01J35 00
- C03C17 245
- C03C17 34
- C03C27 06
- C03C27 12
- C23C16 40
