Hydrophilic reflective article
Abstract
A substrate (10) carries a photocatalytic layer (40) based on titanium dioxide and a reflective layer (20) including a metal which is oxidized or nitrided sub-stoichiometrically. The layers are all disposed on the same face of the substrate. The reflective layer (20) is on the rear surface of the photocatalytic layer. A barrier layer (30) is included under the photocatalytic layer. The barrier layer (30) includes silica. A surface layer (50) is located on the front and includes silicon. Reflective layer thickness is 20-100 nm, preferably 30-60 nm. Photocatalytic layer thickness is 20-120 nm, preferably 40-75 nm. The surface layer thickness is 2-10 nm, preferably 3-6 nm. Visible reflectivity is 40-75%, preferably 40-70%. An Independent claim is included for the production of the reflector.
Term
Term ended
Expired 6 October 2023, 3 years ago.
- Priority
- Filed
- Granted
- Expired
- Today
11 claims: 6 independent, 5 dependent
- 1THE CLAIMS DEFINING THE INVENTION ARE AS FOLLOWS:1. Reflective article comprising a substrate, a titanium dioxide-based photocatalytic layer disposed on the front face of the reflective article and a reflective layer disposed between the photocatalytic layer and the substrate or disposed on the 5 rear face of the substrate, said article being characterised in that the reflective layer is composed of an oxidised or nitrided metal in an under-stoichiometric state such that the total light reflection integrated over the entire visible range of the reflective article is in the range of between 40 and 75%, and such that the light transmission is less than 3%.
- 4Reflective article according to any one of the preceding claims, characterised in that it comprises a barrier layer between the photocatalytic layer and the substrate. 15 5. Reflective article according to claim 4, characterised in that the barrier layer is composed of silicon oxide. 6. Reflective article according to any one of the preceding claims, characterised in that the metal of the reflective layer is selected from Cr, Ti, Al, Si, Zr and the alloys of these metals. 20 7. Reflective article according to any one of the preceding claims, characterised in that it comprises a surface layer on the front face. 8. Reflective article according to claim 7, characterised in that the surface layer is composed of silicon oxide. 9. Reflective article according to any one of the preceding claims, characterised in 25 that the thickness of the reflective layer is in the range of between 20 and 100 nm and preferably between 30 and 60 nm. 10. Reflective article according to any one of the preceding claims, characterised in that the thickness of the photocatalytic layer is in the range of between 20 and 120 nm and preferably between 40 and 75 nm. 2003299433 09 Dec 2008 11. Reflective article according to any one of the preceding claims, characterised in that the thickness of the surface layer is in the range of between 2 and 10 nm and preferably between 3 and 6 nm. 12. Reflective article according to any one of the preceding claims, characterised in
- 55 that the thickness of the barrier layer is in the range of between 10 and 80 nm and preferably between 20 and 60 nm. 13 Reflective article according to any one of the preceding claims, characterised in that the light reflection integrated over the entire visible range lies between 45 and 70%.
- 610 14. Reflective article according to any one of the preceding claims, characterised in that when the reflected colour is neutral (i.e. when the coefficients a* and b* of the Lab system are between -5 and 5), the reflection factor lies between 55 and 75%, preferably between 60 and 72%, and when the reflected colour is within the blue range, i.e. a* lies between -10 and 0 and b* is less than -10, the reflection factor lies between 40 and
- 715 55%, preferably between 40 and 50%. 15. Process for preparing a reflective article according to any one of the preceding claims, characterised in that it comprises the following steps:- deposit of a lightly oxidised or nitrided metal layer on one or other of the faces of a support by cathodic magnetron sputtering in a controlled reactive atmosphere;20 - deposit of a photocatalytic layer on the front face of the support by cathodic magnetron sputtering;- thermal treatment at a temperature in the range of between 300 and 500°C, in particular between 350 and 450°C, for a period that may vary from 15 min to 6 hours.
- 816. Process according to Claim 15, characterised in that it comprises a step of 25 depositing a SiC>2 barrier layer by cathodic sputtering prior to depositing the photocatalytic layer.
- 917. Process according to either one of Claims 15 or 16, characterised in that it comprises a step of depositing a fine hydrophilic surface layer by cathodic magnetron sputtering. 2003299433 25 Nov 2008 ίο
- 1018. A reflective article substantially as hereinbefore described with reference to the accompanying drawings.
- 1119. A process for preparing a composite article substantially as hereinbefore described with reference to the accompanying drawings. 5 20. Use of the reflective article according to any one of Claims 1 to 14 or 18, as rear-view mirror of a motor vehicle. 742626 1 WO 2004/034105 PCT/EP2003/050692 1/3 Fig 1 iilii BIB SlIHi IBBl Fig 2 WO 2004/034105 PCT/EP2003/050692 2/3 reflection factor (%) reflection factor (%) wavelength (nm) Fig. 3 WO 2004/034105 PCT/EP2003/050692 3/3 reflection factor (%) wavelength (nm) Fig. 5
Independent claims9
72 paragraphs in 10 sections, as filed
The invention relates to a composite article, in particular a rear-view mirror for a motor vehicle, comprising a substrate (10), generally made of glass, a reflective layer (20) composed of an oxidised or nitrided metal, possibly in an under-stoichiometric state, disposed on the front face (Figure 1) or on the rear face (Figure 2). The coating stack on the front face comprises a generally titanium dioxide-based layer (40) having photocatalytic properties, possibly covered by a fine hydrophilic layer (50), in particular composed of silicon oxide. The coating stack possibly comprises a barrier sub-layer (30). The article according to the invention advantageously has an attenuated reflection which can vary between 40 and 75 %.
WO 2004/034105
PCT/EP2003/050692
Hydrophilic Reflective Article
The present invention relates to a reflective article, in particular for the rear-view mirrors for motor vehicles, having hydrophilic properties and an attenuated reflection factor. The present invention also relates to a process for the production of such an article.
Mirrors comprising a metal layer (generally made of silver, aluminium or chromium) applied either to the rear face of a transparent substrate, i.e. on the face remote from the observer, or on the front face of the substrate, thus the face directed towards the observer, are known. With a metal layer of chromium having a thickness in the order of 40 to 60 nm, a light reflection of about 65% is obtained, which is perfectly satisfactory for use as a rear-view mirror. However, with more significant light reflections the rear-view mirror has the disadvantage of causing glare for the driver.
Mirrors with a surface, which has been rendered hydrophilic, are also known (see EP 689 962, EP 1 022 588 or JP 2001033607, for example).
The hydrophilic character of a surface increases its surface energy, which allows drops of water to spread in a film instead of forming droplets. On a non-hydrophilic mirror the rain forms droplets, which obstruct visibility. On a mirror with a hydrophilic surface, the water spreads to form a film to allow better visibility. Various materials are known for their inherent hydrophilic properties, in particular titanium oxide and silicon oxide.
In addition to its hydrophilic properties, titanium oxide, particularly when crystallised in the form of anatase, is also well known for its inherent photocatalytic properties, i.e. it is able to degrade organic matter when stimulated by light or UV irradiation.
Patent applications EP 978 494 and EP 1 099 671 describe anti-fog mirrors comprising a reflective metal film respectively on the rear and front face and a TiO<sub>2</sub>/SiO<sub>2</sub> coating stack on the front face.
2003299433 25 Nov 2008
Since the T1O2 layer has a high refractive index (n=2.4), the reflection factor of the coating stack in the visible range is elevated, in the order to 80% for a stack of neutral colouration. To reduce glare, the thicknesses of the layers must be selected so that the wavelength of the reflected light has a peak between 400 and 510 nm, which gives a reflected blue colour and a light reflection in the order of 60%. EP 1 099 671 provides that a reflection-adjusting layer can be added between the reflective film and the T1O2 layer to prevent excessive reduction of the light reflection.
Coating stacks with alternating layers of high and low refractive index are commonly used to increase the light reflection. Documents EP 456 488 and EP 1 040
963 describe minors with high light reflection (>70%) using a metal layer as reflective layer, and a succession of low index layers (S1O2) and high index layers (T1O2) to increase reflection.
There is a need to provide a reflective article with a photocatalytic and hydrophilic effect to allow good visibility in the case of rain, while maintaining a moderate reflection factor to decrease glare. It must be possible in a simple manner to provide such an article with moderate reflection in neutral reflected tones as well as in coloured tones, e. g. in the blue range.
Any discussion of documents, acts, materials, devices, articles or the like which has been included in the present specification is solely for the purpose of providing a context for the present invention. It is not to be taken as an admission that any or all of these matters form part of the prior art base or were common general knowledge in the field relevant to the present invention as it existed before the priority date of each claim of this application.
Throughout this specification the word comprise, or variations such as comprises or comprising, will be understood to imply the inclusion of a stated element, integer or step, or group of elements, integers or steps, but not the exclusion of any other element, integer or step, or group of elements, integers or steps.
According to the present invention there is provided a reflective article comprising a substrate, a titanium dioxide-based photocatalytic layer disposed on the front face of the reflective article and a reflective layer disposed between the photocatalytic layer and the substrate or disposed on the rear face of the substrate, said
742626 1
2003299433 09 Dec 2008
2A article being characterised in that the reflective layer is composed of an oxidised or nitrided metal in an under-stoichiometric state such that the total light reflection integrated over the entire visible range of the reflective article is in the range of between 40 and 75%, and such that the light transmission is less than 3%.
The invention may advantageously provide a reflective article, which has hydrophilic and photocatalytic properties, and a light reflection, which is maintained at a level of reflection that is not excessive even with a neutral colouration.
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In particular, the reflective layer is a Cr<sub>x</sub>N<sub>y</sub> wherein x is comprised between 0.67 and 0.9, preferably between 0.7-0.8 and y is comprised between 0.10.33, preferably between 0.2-0.3.
According to an advantageous embodiment shown in Figure 1, the layers are disposed on the same face of the substrate. However, it is also possible to dispose the reflective layer on the rear face, i.e. on the face remote from the observer, and the photocatalytic layer on the front face, as shown in Figure 2.
The thickness of the photocatalytic layer can be in the range of between 20 and 120 nm and preferably between 40 and 75 nm. This thickness of the surface layer is itself generally in the range of between 2 and 10 nm and preferably between 3 and 8 nm. This latter layer allows the hydrophilic character of the surface to be preserved for longer after the light irradiation has ceased. The very fine thickness of this outer layer enables the photocatalytic effect of the TiO<sub>2</sub> layer to be preserved to some extent.
When a barrier layer is disposed between the reflective layer and the photocatalytic layer, this barrier layer is advantageously composed of silicon oxide. Its thickness can lie between 10 and 80 nm and preferably between 20 and 60 nm. As a result of this barrier layer, the migration of alkaline constituents of the glass, in particular Na<sup>+</sup> ions, towards the titanium oxide layer can be reduced or prevented, and also the titanium oxide layer can be separated from the reflector.
The metal of the reflective layer can be selected from titanium, chromium, aluminium, silicon, zirconium and alloys of these metals. Advantageously, the reflective layer is composed of partially oxidised or nitrided chromium. Its thickness can lie between 20 and 150 nm, preferably between 40 and 120 nm.
It is advantageous if the above-described reflective article has a light reflection (integrated over the entire visible range) in the range of between 40 and 75% and preferably between 45 and 70% of the incident visible light.
When the reflected colour of the article according to the invention is neutral (i.e. when the coefficients a* and b* of the Lab system lie between -5 and 5), it is advantageous if the reflection factor lies between 55 and 75%, preferably
WO 2004/034105
PCT/EP2003/050692 between 60 and 70%, and when the reflected colour is within the blue range (i.e. a* lies between -10 and 0 and b* is less than -10), it is advantageous if the reflection factor lies between 40 and 55%, preferably between 40 and 50%. The coefficients a* and b* are measured with the illuminant D65 at an angle of incidence of 2°.
The light transmission of the article must be very low and preferably less than 3%, indeed less than 2%.
The present invention also relates to a process for the production of a reflective and hydrophilic article, which comprises the following steps:
the deposit of a lightly oxidised or nitrided metal layer (20) on the front or rear face of a support by cathodic magnetron sputtering in a controlled reactive atmosphere with a metal target;
possibly the deposit of an SiO<sub>2</sub> barrier layer on the front face of the support by cathodic magnetron sputtering in a reactive atmosphere with an Si target;
the deposit of a TiO<sub>2</sub> layer on the front face by cathodic magnetron sputtering, e.g. in a reactive atmosphere with a Ti target;
thermal treatment at a temperature in the range of between 300 and 500°C, in particular between 350 and 450°C, for a period that may vary from 15 minutes to 6 hours, in particular from 30 minutes to 4 hours, which allows the TiO<sub>2 </sub>to crystallise in the form of anatase while preventing crazing of the TiO<sub>2</sub> and the haze which would result therefrom.
In particular, a process according to the invention also comprises a step of depositing a fine surface layer of SiO<sub>2</sub> by magnetron sputtering in a reactive atmosphere with an Si target.
When the reflective layer is disposed on the rear face, this is advantageously deposited first. The barrier and photocatalytic layers and the surface layer are then deposited on the opposite face. The entire covered substrate can then be subjected to a thermal treatment.
The present invention is described below by non-restrictive practical examples.
Example 1:
WO 2004/034105
PCT/EP2003/050692
A coating stack comprising glass / Cr<sub>x</sub>O<sub>y</sub> / SiO<sub>2</sub> / TiO<sub>2</sub> / SiO<sub>2</sub> of neutral colouration, as shown in Figure 1, is formed on a clear soda-lime glass (10) with a thickness of 2 mm by cathodic magnetron sputtering.
The conditions of depositing the different layers forming the stack are as follows:
A first layer (20) of lightly oxidised chromium is deposited on the substrate (10) from a chromium metal target in an atmosphere of 80% by mass of argon and 20% by mass of oxygen. The thickness of the layer is in the order of 45 nm.
A barrier layer (30) of SiO<sub>2</sub> is deposited on the first layer from an Si metal target in an atmosphere of 75% by mass of argon and 25% by mass of oxygen. The thickness of the layer is in the order of 40 nm.
A layer of TiO<sub>2</sub> (40) is deposited on the barrier layer from an oxidised titanium target in an atmosphere of 75% by mass of argon and 25% by mass of oxygen. The thickness of the layer is in the order of 60 nm.
A last very fine layer of SiO<sub>2</sub> (50) is then deposited on the coating stack. The deposit is performed from an Si metal target in an atmosphere of 75% by mass of argon and 25% by mass of oxygen. The thickness of the layer is in the order of 5 nm.
The coated substrate is then subjected to a thermal treatment for 1 hour at 400°C. The rise in temperature occurs rapidly but cooling is conducted very progressively (approximately 3°C per minute).
The light reflection factor (LR) integrated over the entire visible range is measured in accordance with the standard SAE J 964 with an integrating photometer. The substrate coated according to Example 1 has a LR of 65%, while the same stack of SiO<sub>2</sub> / TiO<sub>2</sub> / SiO<sub>2</sub> on a chromium metal layer of the same thickness would have given a LR of 80% and would therefore have given too much glare for use as a rear-view mirror (see Figure 3).
The reflected colour of the coating stack is determined by the colorimetric coordinates L*, a*, b* on the basis of illuminant D65 with an angle of incidence of 2°. The values obtained are collated in the table below. The very low
WO 2004/034105
PCT/EP2003/050692 values for a* and b* show that the coating stack does not have any significant reflected colour.
The light transmission (LT) integrated over the visible range is 0.9%.
Example 2:
A coating stack comprising glass / Cr<sub>x</sub>N<sub>y</sub> / SiO<sub>2</sub> / TiO<sub>2</sub> / SiO<sub>2</sub> of blue colouration, as also shown in Figure 1, is formed on a clear soda-lime glass (10) with a thickness of 2 mm by cathodic magnetron sputtering.
The conditions of depositing the different layers forming the stack are as follows:
A first layer (20) of lightly nitrided chromium is deposited on the substrate from a chromium metal target in an atmosphere of 50% by mass of argon and 50% by mass of nitrogen. The thickness of the layer is in the order of 45 nm.
A barrier layer (30) of SiO<sub>2</sub> with a thickness in the order of 25 nm, then a TiO<sub>2</sub> layer (40) with a thickness in the order of 40 nm, and then a last layer of SiO<sub>2 </sub>(50) with a thickness in the order of 5 nm cure successively deposited in the same conditions as described in Example 1.
The coated substrate is then subjected to a thermal treatment under the same conditions as described in Example 1.
The light reflection factor (LR) integrated over the entire visible range is measured in accordance with the standard SAE J 964 with an integrating photometer. The substrate coated according to Example 2 has a LR of 43%, while the same coating stack of SiO<sub>2</sub> / TiO<sub>2</sub> / SiO<sub>2</sub> on a chromium metal layer of the same thickness would have given a LR of 56% (see Figure 4).
The reflected colour of the coating stack is determined by the colorimetric coordinates L*, a*, b* on the basis of illuminant D65. The values obtained are collated in the table below. The negative values for b* and the very slightly negative values for a* show that the coating stack has a slightly greenish reflected blue colour.
The light transmission (LT) integrated over the visible range is 1.5%.
WO 2004/034105
PCT/EP2003/050692
Example 3 :
A coating stack comprising glass / Cr<sub>x</sub>N<sub>y</sub> / SiO<sub>2</sub> / TiO<sub>2</sub> / SiO<sub>2</sub> of neutral colour, as also shown in Figure 1, is formed on a clear soda-lime glass (10) with a thickness of 2 mm by cathodic magnetron sputtering in the same conditions as in example 2.
The thickness of the layers cire : 75 nm for the Cr<sub>x</sub>N<sub>y</sub> layer (20), 55 nm for the SiO<sub>2</sub> barrier layer (30), 50 nm for the TiO<sub>2</sub> layer (40) and around 5 nm for the SiO<sub>2</sub> top layer (50).
The coated substrate is then subjected to a thermal treatment under the 10 same conditions as described in Example 1.
The level of nitridation of the Cr<sub>x</sub>N<sub>y</sub> layer has been analysed. The index x is evaluated at 0.7 and y at 0.3.
The substrate coated according to Example 3 has a LR of 68%, while the same coating stack of SiO<sub>2</sub> / TiO<sub>2</sub> / SiO<sub>2</sub> on a chromium metal layer of the same thickness would have given a LR of 76% (see Figure 5).
The colorimetric coordinates L*, a*, b* of the reflected colour are collated in the table below. The very low values for a* and b* show that the coating stack does not have any significant reflected colour.
Table 1:
<td></td><td> LR</td><td> L*</td><td> a*</td><td> b*</td>
<td> Example 1</td><td> 65</td><td> 85.8</td><td> -3.8</td><td> -1.4</td>
<td> Example 2</td><td> 43</td><td> 75.1</td><td> -6.4</td><td> -16.4</td>
<td> Example 3</td><td> 68</td><td> 76</td><td> -3.73</td><td> -2.36</td>
2003299433 09 Dec 2008
Contents10
Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| EP1040963A2 | Cites | European Patent Office (EPO) | Search report |
| GB2291653A | Cites | United Kingdom | Search report |
| WO9710186A1 | Cites | World Intellectual Property Organization (WIPO) | Search report |
| EP1040963 | Cites | European Patent Office (EPO) | – |
| GB2291653 | Cites | United Kingdom | – |
| WO1997010186 | Cites | World Intellectual Property Organization (WIPO) | – |
24 members in 15 offices
Priority claims3
| Document | Office | Kind | Date |
|---|---|---|---|
| 0212820 | France | – | |
| 0212820 | France | A | |
| 0350692 | European Patent Office (EPO) | W |
Members24
| Document | Office | Kind | |
|---|---|---|---|
| FR2845774A1 | France | A1 | |
| CA2502224A1 | Canada | A1 | |
| WO2004034105A1 | World Intellectual Property Organization (WIPO) | A1 | |
| AU2003299433A1 | Australia | A1 | |
| FR2845774B1 | France | B1 | |
| KR20050053638A | Republic of Korea | A | |
| EP1554611A1 | European Patent Office (EPO) | A1 | |
| BR0314571A | Brazil | A | |
| MXPA05003722A | Mexico | A | |
| CN1695072A | China | A | |
| RU2005114483A | Russian Federation | A | |
| JP2006515681A | Japan | A | |
| US2006152832A1 | United States of America | A1 | |
| CN100397101C | China | C | |
| AU2003299433B2This record | Australia | B2 | |
| US7527867B2 | United States of America | B2 | |
| RU2356075C2 | Russian Federation | C2 | |
| EP1554611B1 | European Patent Office (EPO) | B1 | |
| AT494566T | Austria | T | |
| ATE494566T1 | Austria | T1 | |
| DE60335644D1 | Germany | D1 | |
| ES2360902T3 | Spain | T3 | |
| KR101070129B1 | Republic of Korea | B1 | |
| BRPI0314571B1 | Brazil | B1 |
2 legal events, as the office reported them to INPADOC
Over the term
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| Patent ceased section 143(a) (annual fees not paid) or expiredExpiredMK14 | MK14 | |
| Letters patent sealed or granted (standard patent)GrantedFGA | FGA |
Numbers
- Publication
- 2003299433
- Application
- 299433
Titles
- English
- Hydrophilic reflective article
Classification
- CPC, 10
- C03C17/245
- C03C17/2456
- G02B5/0816
- C03C17/34
- G02B5/08
- C03C17/3423
- C03C17/3435
- C03C2217/71
- C03C2218/365
- B60R1/02
- IPC, 3
- G02B5 08
- C03C17 245
- C03C17 34