Heat treatable coated articles with zirconium or zirconium nitride layer and methods of making same
15 claims: 2 independent, 13 dependent
- 1Wyrób powlekany zawierający układ warstwowy osadzony na podłożu szklanym, przy czym układ obejmuje:pierwszą warstwę zawierającą azotek krzemu, warstwę zawierająca azotek metalu i drugą warstwę zawierającą azotek krzemu, znamienny tym, że warstwa zawierająca azotek metalu zawiera azotek cyrkonu;pierwsza warstwa zawierająca azotek krzemu jest umieszczona na podłożu szklanym i jest umieszczona pod i bezpośrednio w kontakcie z warstwą zawierającą azotek cyrkonu;druga warstwa zawierająca azotek krzemu jest umieszczona ponad bezpośrednio w kontakcie z warstwą zawierającą azotek cyrkonu;i przy czym pierwsza warstwa zawierająca azotek krzemu jest grubsza niż druga warstwa zawierająca azotek krzemu, i przy czym wyrób powlekany wykazuje wartość ΔΕ^ (odblaskową od strony szkła) nie większą od 2,0 po obróbce cieplnej.
- 2Wyrób powlekany według zastrz. 1, znamienny tym, że co najmniej jedna z warstw zawierających azotek krzemu zawiera ponadto co najmniej jedno ze stali nierdzewnej, glinu i tlenu.
- 3Wyrób powlekany według zastrz. 1, znamienny tym, że jest poddany obróbce cieplnej przez co najmniej 5 minut w temperaturze (temperaturach) co najmniej 580°C.
- 4Wyrób powlekany według zastrz. 1, znamienny tym, że jest chemicznie trwały w ten sposób, że jest określony przez wartość Δ^ (odblaskową od strony szkła) nie większą od 3,0;jeśli jest poddany działaniu substancji wrzącej zawierającej HCl przez jedną godzinę.
- 5Wyrób powlekany według zastrz. 1, znamienny tym, że jest chemicznie trwały w ten sposób, że jest określony przez wartość Δ^ (odblaskową od strony szkła) nie większą od 2,0;jeśli jest poddany działaniu substancji wrzącej zawierającej HCl przez jedną godzinę.
- 6Wyrób powlekany według zastrz. 1, znamienny tym, że wykazuje przepuszczalność w zakresie widzialnym od 10-40%.
- 7Wyrób powlekany według zastrz. 1, znamienny tym, że układ warstwowy składa się zasadniczo z pierwszej i drugiej warstwy oraz warstwy zawierającej azotek cyrkonu.
- 8Wyrób powlekany obejmujący układ warstwowy osadzony na podłożu szklanym, przy czym układ obejmuje:pierwszą warstwę zawierającą azotek krzemu, warstwę metaliczną i drugą warstwę zawierającą azotek krzemu, znamienny tym, że warstwa metaliczna zawiera cyrkon, pierwsza warstwa zawierająca azotek krzemu jest umieszczona na podłożu szklanym i jest umieszczona ponad metaliczną warstwą zawierającą cyrkon, druga warstwa zawierającą azotek krzemu jest umieszczona ponad warstwą zawierającą cyrkon;i przy czym pierwsza warstwa zawierająca azotek krzemu jest grubsza od drugiej warstwy zawierającej azotek krzemu, i przy czym wyrób powlekany jest trwały chemicznie w ten sposób, że jest określony przez wartość ΔΟ :;(odblaskową od strony szkła) nie większą od 3,0, jeśli jest poddany działaniu substancji wrzącej zawierającej HCl przez jedną godzinę.
- 9Wyrób powlekany według zastrz. 1, znamienny tym, że obejmuje jednostkę okienną IG.
- 10Wyrób powlekany według zastrz. 8, znamienny tym, że warstwa metaliczna zawierająca cyrkon znajduje się w bezpośrednim kontakcie z każdą z pierwszej i drugiej warstwy zawierającej azotek krzemu.
- 11Wyrób powlekany według zastrz. 8, znamienny tym, że jest poddany obróbce cieplnej i wykazuje wartość ΔE* G (odblaskową od strony szkła) nie większą od 4,0 po przeprowadzonej obróbce cieplnej.
- 12Wyrób powlekany według zastrz. 8, znamienny tym, że jest poddany obróbce cieplnej i wykazuje wartość ΔE* G (odblaskową od strony szkła) nie większą od 2,5 po przeprowadzonej obróbce cieplnej, przy czym obróbka cieplna trwa przez co najmniej 5 minut w temperaturze (temperaturach) co najmniej 580°C.
- 13Wyrób powlekany według zastrz. 8, znamienny tym, że jest poddany obróbce cieplnej i wykazuje wartość ΔE* G (odblaskową od strony szkła) nie większą od 2,0 po przeprowadzonej obróbce cieplnej.
- 14Wyrób powlekany według zastrz. 8, znamienny tym, że jest trwały chemicznie w ten sposób, że jest określony przez wartość Δ^ (odblaskową od strony szkła) nie większą od 2,0, jeśli jest poddany działaniu substancji wrzącej zawierającej HCl przez jedną godzinę.
- 15Wyrób powlekany według zastrz. 8, znamienny tym, że obejmuje jednostkę okienną IG.
Independent claims15
127 paragraphs in 4 sections, as filed
Description of the invention
The invention relates to coated articles that include a system comprising a first layer including silicon nitride, a layer including metal nitride, or alternatively a metal layer, and a second layer including silicon nitride. Such coated articles may be used in IG units, unitary window units, vehicle windows, and / or other suitable applications.
Coatings controlling solar radiation are known having a layer system: glass / Si3N4 / NiCr / Si3N4. Unfortunately, while such sandwich systems provide effective solar radiation control and are generally good coatings, they are also sometimes insufficient in terms of: (a) resistance to acid corrosion (e.g. HCl); (b) mechanical characteristics such as scratch resistance; and / or (c) after heat treatment for tempering, hot bending or the like (ie, ∆Ε * values).
Accordingly, there is a need for a coated article which has improved characteristics with respect to (a), (b) and / or (c) compared to a conventional glass / Si3N4 / -NiCr / Si3N4 layer stack, but which still achieves acceptable control of solar radiation (e.g., blocking significant amounts of IR and / or UV radiation). The object of the present invention is to meet at least one of the above-mentioned needs and / or other needs that will become apparent to those skilled in the art from reading the following disclosure.
The invention relates to a coated article comprising a layer system deposited on a glass substrate, the system comprising:
a first layer comprising silicon nitride, a layer comprising a metal nitride and a second layer comprising silicon nitride, characterized in that the layer comprising metal nitride comprises zirconium nitride;
- a first layer containing silicon nitride is disposed on a glass substrate and is placed under and in direct contact with the layer containing zirconium nitride;
- the second layer containing silicon nitride is placed above directly in contact with the layer containing zirconium nitride; and wherein the first layer comprising silicon nitride is thicker than the second layer comprising silicon nitride, and wherein the coated article has a ΔE * value<sub>G.</sub> (reflective on the glass side) no more than 2.0 after heat treatment.
Preferably, in the coated article of the invention, at least one of the silicon nitride inclusive layers further comprises at least one of stainless steel, aluminum and oxygen.
Preferably, the coated article is heat treated for at least 5 minutes at a temperature (s) of at least 580 ° C and is chemically stable such that it is determined by the value ΔΟ<sub>:;</sub> (reflective from the glass side) not more than 3.0; if exposed to a boiling substance containing HCl for one hour.
More preferably, the coated article is chemically stable such that it is determined by the ∆Ο value<sub>:;</sub> (reflective on the glass side) not more than 2.0; if exposed to a boiling substance containing HCl for one hour.
The coated article of a preferred embodiment has a visible transmission of 10-40%, and the layer system consists essentially of first and second layers and a layer including zirconium nitride.
The coated article of the invention preferably comprises an IG window unit.
Alternatively, the invention provides a coated article having a layer system deposited on a glass substrate, the system comprising:
a first layer comprising silicon nitride, a metal layer and a second layer comprising silicon nitride, characterized in that
- the metallic layer contains zircon,
- a first layer containing silicon nitride is placed on a glass substrate and is placed over a metallic layer containing zircon,
- a second layer containing silicon nitride is placed above the layer containing zircon; and where
- the first layer containing silicon nitride is thicker than the second layer containing silicon nitride, and the coated article is chemically stable in that it is determined by the value of ΔΟ<sub>:;</sub> (reflective on the glass side) of 5 not more than 3.0 when exposed to a boiling substance containing HCl for one hour.
PL 208 586 B1
Preferably, in the coated article, the zirconium-containing metallic layer is in direct contact with each of the first and second silicon nitride-containing layers.
Preferably, the coated article is heat treated and has a ΔΕ * value<sub>:;</sub> (reflective on the glass side) of not more than 4.0 after the thermal treatment performed, even more preferably has a ΔE * value<sub>G.</sub> (glass side reflective) of no more than 2.5 after the heat treatment performed, the heat treatment being for at least 5 minutes at a temperature (s) of at least 580 ° C and most preferably having a ΔE * value<sub>G.</sub> (reflective on the glass side) no more than 2.0 after the heat treatment.
A preferred coated article according to the invention is chemically stable in that it is determined by the ∆Ο value<sub>:;</sub> (reflective on the glass side) of not more than 2.0 when exposed to a boiling substance containing HCl for one hour.
The coated article of the invention preferably comprises an IG window unit.
In certain example embodiments of this invention, a coating or layering is provided that includes at least one zirconium (Zr) and / or zirconium nitride (ZrN) layer sandwiched between at least a pair of dielectric layers. In certain example embodiments, the coating or layering has good corrosion resistance to acid (s) such as HCl, good mechanical performance such as scratch resistance, and / or good color fastness (i.e., low ΔE value (s)). * after heat treatment (HT).
Figure 1 is a partial cross sectional view of an embodiment of a coated article (heat treated or not heat treated) according to an example embodiment of this invention.
Figure 2 is a partial cross-sectional view of an IG window unit such as that contemplated in the present invention in which the coating or layer system of Figure 1 may be used.
Certain embodiments of the present invention provide a coating or sandwich system that can be applied to windows such as solid windows, IG window units, vehicle windows (windshields, rear and / or side windows), construction (commercial or residential) windows, and / or other suitable applications. Certain example embodiments of this invention provide a sandwich system that has good (a) resistance to acid corrosion (e.g., HCl); (b) mechanical performance, such as scratch resistance; and / or (c) thermal stability during heat treatment. In terms of thermal stability after heat treatment (HT), this means a low ΔE * value and / or a low Δa * value; where Δ indicates the change in terms of heat treatment such as quenching, hot bending or thermal heating to strengthen, monolithic and / or in the context of double glazing environments such as IG units or automotive windshields. Such heat treatments sometimes require heating the coated substrate to temperatures from about 580 ° C to about 800 ° C for 5 minutes or more.
Figure 1 is a side cross sectional view of a coated article according to an example embodiment of this invention. The coated article comprises at least a substrate 1 (e.g., a clear, green, brown, gray, blue, or cyan glass substrate from about 1.0 to 12.0 mm thick), a first dielectric layer 2 (e.g., made of or containing silicon nitride (e.g. Si3N4), titanium oxide, titanium nitride, silicon oxynitride, aluminum oxide, zinc oxide or the like), an infrared reflecting layer 3 made of or including zirconium (Zr) or zirconium nitride (e.g. ZrN) and a second dielectric layer 4 (e.g. made of or including silicon nitride (e.g., Si3N4), titanium nitride, titanium oxide, silicon oxynitride, zinc oxide, aluminum nitride, or the like). The total coating 5 comprises at least layers 2-4. Infrared (IR) reflecting layer 3 may be metallic Zr in certain example embodiments of this invention, or otherwise, may be or may include ZrN in other embodiments of this invention.
It is noted that the terms "oxide" and "nitride" in the context of the present invention encompass a variety of stoichiometry. For example, the term titanium oxide includes TiO, TiO2, and various other TiOx stoichiometry. Similarly, the term zirconium nitride includes both stoichiometric and non-stoichiometric nitrides Zr. As another example, the term silicon nitride includes stoichiometric Si<sub>3</sub>N<sub>4</sub> as well as other non-stoichiometric silicon nitrides. Layers 2-4 may be deposited on substrate 1 by magnetron sputtering or any other suitable technique in various embodiments of this invention. While dielectric substances 2, 4 can be any suitable dielectric substances
In various embodiments of this invention, it has surprisingly been found that nitrides perform particularly well - better than oxides.
While Fig. 1 illustrates the coating 5 in a manner in which the Zr or ZrN layer 3 is in direct contact with the dielectric layers 2 and 4, the present invention is not so limited. In certain other embodiments of this invention, other layer (s) may be provided between layers 2 and 3 (and / or between layers 3 and 4). Moreover, in certain example embodiments of this invention, different layer (s) may be provided between substrate 1 and layer 2, and / or in further embodiments of the present invention, different layer (s) may be provided on substrate 1 over layer 4. Thus, while the coating is 5 or layers thereof are / are "on" or "deposited on" substrate 1 (directly or not directly), other layer (s) may be provided therebetween. Thus, for example, the layer system 5 and its layers shown in Fig. 1 are considered to be "on" substrate 1 even though other layer (s) may be interposed therebetween (i.e., the terms "on" and "Seated on" as used in this patent application are not limited to direct contact).
It has surprisingly been found that the use of Zr or ZrN in layer 3 (as opposed to NiCr) results in a coated article having:
(a) improved corrosion resistance to acid such as HCl;
(b) improved mechanical durability, such as better scratch resistance; and / or (c) improved thermal stability (i.e., lower ΔE * value (s)). Moreover, in certain example embodiments of this invention, the use of Zr and / or ZrN allows for a deeper blue color.
In certain example embodiments of this invention, each of the antireflective dielectric layers 2 and / or 4 may have a refractive index less than that of the metal or metal nitride layer 3 for anti-glare purposes (e.g., layers 2 and / or 4 may have a refractive index "N" from about 1.9 to 2.1, while 3 may have a higher factor "n"). In embodiments of the present invention where layers 2 and / or 4 contain silicon nitride (e.g., Si3N4), the Si-containing sputtering targets used to form these layers may or may not be doped with 6-20% by weight of aluminum. and / or stainless steel (e.g., SS # 316), with nearly the same amount appearing thereafter in layers made in this way.
Figure 2 illustrates the coating or layer system 5 of Figure 1 applied to face # 2 of an IG (Insulating Glass) window unit. In Figure 2, two glass substrates (e.g. 2mm to 12mm thick float glass) 1, 7 are sealed at the peripheral edges with conventional sealant and / or spacer (not shown) and may be provided with a conventional center tape. dryer (not shown). The panes are then held in a conventional window or door mounting frame. By sealing the peripheral edges of the glass sheets and replacing the air in the insulation space (or chamber) 9 with a gas such as argon, a highly insulating IG unit value is produced. Optionally, insulating space 9 may be pressurized below atmospheric pressure in certain other embodiments, although this is of course not necessary in all IG embodiments. The coating 5 in Fig. 1 may be provided on the inner wall of substrate 1 in certain embodiments of this invention (as shown in Fig. 2) and / or on the inner wall of substrate 1 in other embodiments of this invention.
Returning to Fig. 1, where different thicknesses may be used in accordance with one or more of the items and / or needs considered above. According to certain non-limiting example embodiments of this invention, exemplary thicknesses and materials for the respective layers on the glass substrate 1 are as follows.
Table 1 (Thickness)
<td>Layer</td><td>Favorable range [A (nm)]</td><td>More preferred [A (nm)]</td>
<td>Silicon nitride (layer 2)</td><td>100-900 A (10-90 nm)</td><td>200-800 A (20-80 nm)</td>
<td>Zr or ZrNx (layer 3)</td><td>50-900 A (5-90 nm)</td><td>100-500 A (10-50 nm)</td>
<td>Silicon nitride (layer 4)</td><td>100-900 A (10-90 nm)</td><td>150-400 A (15-40 nm)</td>
PL 208 586 B1
In certain example embodiments, the color fastness due to the long HT may result in significant matchability between the heat treated and non heat treated versions of the coating or layer system. In other words, in unitary and / or IG applications, in certain embodiments of this invention, two glass substrates having the same coating system applied (one HT post deposited and the other not HT treated) appear substantially the same by the naked human eye.
The ΔΕ * value (s) is important in determining whether or not there is or no color matching after HT, in the context of certain embodiments of this invention. The color in this patent application has been described with reference to typical a *, b * values. For example, the term ∆a * is a simple indicator of how much the color value of a * changes with HT.
The term ΔE * (and ΔE) is well understood and described, along with various techniques for its determination, in ASTM 2244-93 as well as described by Hunter et al., The Measurement of Appearance, 2<sup>n / a</sup> Ed. chap. 9, page 162 et seq. (John Wiley & Sons, 1987). As used, ∆E * (and ∆E) is a way to adequately express the change (or lack thereof) in reflectance and / or transmittance (and thus also color appearance) of an article after or due to HT. ΔE can be calculated using the "ab" technique or the Hunter technique (denoted by the use of "H" in subscript). ΔE corresponds to the L, a, b scale; Hunter Lab (or I.<sub>h</sub>, a<sub>h</sub>, b<sub>h</sub>).
Similarly, ΔE * corresponds to the L *, a *, b * CIE LAB scale. Both are considered to be useful and equivalent for the purposes of the present invention. For example, as described above by Hunter et al., Cited above, a rectangular coordinate / scale technique (CIE LAB 1976) known as the L *, a *, b * scale may be used, in which:
L * means (CIE 1976) luminous units a * means (CIE 1976) red-green units b * means (CIE 1976) yellow-blue units and the distance ΔE * between L *<sub>about</sub> and*<sub>about</sub> b *<sub>about</sub> and L *<sub>1</sub> and*<sub>1</sub> b *<sub>and</sub> is:
ΔΕ * = {^ L *)<sup>2</sup> + (Δθ *)<sup>2</sup> + ^ b *)<sup>2</sup>}<sup>1/2</sup> (1) where:
Δυ * = L * 1 - L * 0 (2)
Δa * = a *<sub>1</sub> - a *<sub>0</sub> (3)
Δ ^ = b * i - b * o (4) where subscript "0" is the coating (or coated article) before heat treatment and the subscript "1" is the coating (coated article) after heat treatment; and the numbers used (e.g., a *, b *, L *) are those calculated by the L *, a *, b * coordinate technique mentioned above (CIE LAB 1976). Similarly, ΔΕ can be calculated using equation (1) by replacing a *, b * L * with the values of Hunter Lab a<sub>h</sub>, b<sub>h</sub>, L.<sub>h</sub>. Also within the scope of the present invention and in the estimation of ∆Ε * they are equivalent numbers if converted to those calculated by any other technique that uses the same concept of ∆Ε * as defined above.
In certain exemplary non-limiting embodiments of the invention, the coatings or layer system provided herein on transparent unitary glass substrates has the following reflective color prior to heat treatment when viewed from the glass side of a coated article (I11. C, 2). -graduated follow-up).
Table 2
Reflective color on the glass side (RG) before heat treatment
<td></td><td>General</td><td>Beneficial</td>
<td>and*</td><td>-8 to +8</td><td>-5 to +6</td>
<td>b *</td><td>-30 to +20</td><td>-20 to +10</td>
<td>L *</td><td>10 to 75</td><td>25 to 60</td>
PL 208 586 B1
After heat treatment (HT), in certain example embodiments of this invention, coated articles have color characteristics such as the following in Table 3. A subscript "G" is indicated to correspond to the glass side reflective color, and "T" to subscript is indicated as transmissive color and a subscript "F" corresponds to the color facing the film. As is known, the glass side (G) is reflective color when viewed from the glass side (as opposed to the layer / film side) of the coated article. Film side (F) is the reflective color when viewed from the side of the coated article to which the coating is provided 5.
Table 3
Color due to / after heat treatment
<td></td><td>General</td><td>Beneficial</td><td>The most advantageous</td>
<td>AE * g</td><td> < 5,5</td><td> < 4,0</td><td> < 2,5</td>
<td>AE * f</td><td> < 5,0</td><td> < 4,0</td><td> < 3,5</td>
<td>ΔΕ * τ</td><td> < 5,5</td><td> < 4,0</td><td> < 2,5</td>
<td>a * G</td><td>-6 to +6</td><td>-4 to +4</td><td>-3 to +3</td>
<td>b * G</td><td>-30 to +25</td><td>-20 to +20</td><td>-17 to +10</td>
<td>Tvis (YOU):</td><td> 8-80%</td><td> 10-40%</td><td> 10-30%</td>
For purposes of example only, a plurality of examples representing various example embodiments of this invention are provided below.
Examples
The following seven monolithic example coated articles were produced (each finally annealed and heat treated). Coating 5 for each example is shown in Figure 1 and thus includes layers 2, 3 and 4. The glass substrates were transparent and approximately 3 mm thick in each example. In each example, the lower dielectric layer 2 was made of silicon nitride and was approximately 770 Å (77 nm) thick. Also, in each example, the top dielectric layer 4 was made of silicon nitride and was approximately 300 Å (30 nm) thick. The dielectric layers contained a small amount of stainless steel and / or aluminum. The IR reflecting layer 3 was made of metallic Zr in example 1 and zirconium nitride (ZrN<sub>x</sub>) in examples 2-7, but was always about 200 Å (20 nm) thick (the nitrogen content "x" in examples 2-7 varied depending on the nitrogen gas flow in the sputter coater. Linear "rate" in the table 4 is expressed in inches / minute (cm / min) The Tvis in the following table 4 represents visible transmission (11. C, 2 step observation) The IR reflecting layers in Examples 1-7 were deposited as follows.
Table 4
Coating deposition conditions
<td>Parameter</td><td>Ex. 1</td><td>Ex. 2</td><td>Ex. 3</td><td>Ex. 4</td><td>Ex. 5</td><td>Ex. 6</td><td>Ex. 7</td>
<td>Shield:</td><td>Zr</td><td>Zr</td><td>Zr</td><td>Zr</td><td>Zr</td><td>Zr</td><td>Zr</td>
<td>Gas flow Ar [cm<sup>3</sup> (sccm)]:</td><td> 30</td><td> 30</td><td> 30</td><td> 30</td><td> 30</td><td> 30</td><td> 30</td>
<td>N2 gas flow [cm<sup>3</sup> (sccm)]:</td><td> 0</td><td> 6</td><td> 12</td><td> 4</td><td> 6</td><td> 8</td><td> 10</td>
<td>Power (kW):</td><td> 1</td><td> 1</td><td> 1</td><td> 1</td><td> 1</td><td> 1</td><td> 1</td>
<td>Speed [in / min</td><td> 37,5</td><td> 65,6</td><td> 30</td><td> 40</td><td> 31</td><td> 12</td><td> 8</td>
<td>(cm / min)]:</td><td> (95,25)</td><td> (166,6)</td><td> (76,2)</td><td> (101,6)</td><td> (78,74)</td><td> (30,48)</td><td> (20,32)</td>
<td># waveforms:</td><td> 1</td><td> 2</td><td> 4</td><td> 1</td><td> 1</td><td> 1</td><td> 1</td>
PL 208 586 B1
After sputter coating by the methods described above, Examples 1-7 had the following optical characteristics in annealed (untreated) form (11. C, 2 step observation).
Table 5
Characteristics - Annealed (not heat treated)
<td>Parameter</td><td>Ex. 1</td><td>Ex. 2</td><td>Ex. 3</td><td>Ex. 4</td><td>Ex. 5</td><td>Ex. 6</td><td>Ex. 7</td>
<td>Tvis (TY) (%):</td><td> 14,8</td><td> 26,9</td><td> 19,3</td><td> 22,6</td><td> 19,3</td><td> 23,25</td><td> 23,3</td>
<td>a * G</td><td> 1,77</td><td> 4,79</td><td> 2,33</td><td> -0,46</td><td> -2,1</td><td> -3,11</td><td> -3,78</td>
<td>b * G</td><td> -13,62</td><td> -16,02</td><td> -14,17</td><td> -18,61</td><td> -16,68</td><td> -10,47</td><td> -9,2</td>
<td>1 * LG</td><td> 52,9</td><td> 41,02</td><td> 43,7</td><td> 49,9</td><td> 53,7</td><td> 55,15</td><td> 53,05</td>
<td>R<sub>S.</sub> [ohms (O) / n]:</td><td> 106</td><td> 113</td><td>not marked</td><td> 110</td><td> 107</td><td> 80</td><td> 110</td>
From the above table 5 it can be concluded that example 1, where the IR reflecting layer 3 was made of metallic Zr, had higher transmittance than examples 2-7, where the layer 3 was made of ZrN.<sub>x</sub>. However, it will be shown below that the use of nitride in layer 3 may be advantageous in some cases with respect to post-HT thermal stability and / or durability.
Table 6 below illustrates the thermal stability characteristics of some examples after heat treatment (HT). The HT performed in Examples 1-7 lasted for about 10 minutes at about 625 ° C.
Table 6
Thermal stability after heat treatment
<td>Parameter</td><td>Ex. 1</td><td>Ex. 2</td><td>Ex. 3</td><td>Ex. 4</td><td>Ex. 5</td><td>Ex. 6</td><td>Ex. 7</td>
<td>AE * g:</td><td> 5,2</td><td> 5,3</td><td> 1,5</td><td> 4,3</td><td> 3,2</td><td> 2,6</td><td> 2,4</td>
<td>ΔE * F:</td><td> 4,0</td><td> 2,7</td><td> < 3,4</td><td>not marked</td><td>not marked</td><td>not marked</td><td>not marked</td>
<td>ΔΕ * γ:</td><td> 2,4</td><td> 3,6</td><td> 5,3</td><td>on</td><td>on</td><td>on</td><td>on</td>
As can be seen from Table 6, Example 1 with a Zr 3 metal layer had a better ΔE * τ value than Examples 2-3. However, in example 3 where layer 3 was made of ZrN<sub>x</sub> with a significant nitrogen gas flow during sputtering, the best reflective color fastness on the glass side after HT (i.e., ΔE *<sub>G.</sub>). Given that the examples with the most nitrogen used in layer 3 (i.e., examples 3 and 5-7) realize the best (i.e., lowest) glass side reflective ΔE * values, it can be concluded that the nitriding of layer 3 can improve thermal durability of the coating after HT. The more nitrogen was used, the better the thermal stability after HT. In certain example embodiments of this invention, coated articles can have a ΔE * value<sub>G.</sub> not more than 2.0. Thus, nitriding of the Zr layer may or may not be useful depending on the desired application / function of layer 3 and the entire coating 5.
For comparison, the following layer stack was considered: glass / Si3N4 / NiCr / Si3N4, in which the lower Si<sub>3</sub>N<sub>4</sub> is approximately 50-70 A (5-7 nm) thick, the NiCr layer is approximately 325 A (32.5 nm) thick, and the Si surface layer<sub>3</sub>N<sub>4</sub> it is about 210-310 A (21-31 nm) thick. This comparative coated article has a fairly high transmissive ∆Ε * value of about 5.9 after heat treatment (HT) at 625 ° C for ten (10) minutes. This high transmissive value ∆Ε * means that the coated article does not match approximately the color of the untreated version for color transmittance after 10 minutes of HT. In contrast, it can be found that Examples 1-7 have better post-HT color stability (i.e., lower ∆Ε *) than this comparative glass / Si3N4 / NiCr / Si3N4 sandwich system. This exemplary benefit of using Zr or ZrNx is therefore evident from the above point of view.
Tables 7a and 7b below illustrate the good chemical stability of Examples 1-3, both before annealing (A = annealed) and after (H) heat treatment. Each example coating was exposed to boiling HCl for 1 hour and to boiling NaOH for 1 hour. The values of ΔC in Tables 7a and 7b indicate the change in parameters a *, b *, and L *, caused by the corresponding
Suitable boilers. In particular, the ΔC values were determined in the same way as the ΔE * values defined above (see equations (1) - (4)), except that in equations (2) - (4) subscript "0" means pre-boil coating (or coated article) and the subscript "1" means post-boiling coating (or coated article).
Table 7a
Chemical stability (1 hour in boiling HCl)
<td>Parameter</td><td>Ex. 1 (A)</td><td>Ex. 1 (H)</td><td>Ex. 2 (A)</td><td>Ex. 2 (H)</td><td>Ex. 3 (A)</td><td>Ex. 3 (B)</td>
<td>ΔΟβ:</td><td> 2,5</td><td> 1,2</td><td> 2,1</td><td> 2,0</td><td> 0,53</td><td> 0,8</td>
<td>ΔCF:</td><td> 1,9</td><td> 0,9</td><td> 1,0</td><td> 1,0</td><td> 0,77</td><td> 2,0</td>
<td>ΔΟτ:</td><td> 1,8</td><td> 1,0</td><td> 0,7</td><td> 1,4</td><td> 0,60</td><td> 0,6</td>
Table 7b
Chemical stability (1 hour in boiling NaOH)
<td>Parameter</td><td>Ex. 1 (A)</td><td>Ex. 1 (H)</td><td>Ex. 2 (A)</td><td>Ex. 2 (H)</td><td>Ex. 3 (A)</td><td>Ex. 3 (B)</td>
<td>ΔΟβ:</td><td> 0,8</td><td> 1,3</td><td> 1,9</td><td> 3,3</td><td> 1,4</td><td> 2,9</td>
<td>ΔΟF:</td><td> 10,3</td><td> 8,3</td><td> 9,5</td><td> 10,6</td><td> 5,3</td><td> 11,3</td>
<td>ΔΟτ:</td><td> 3,7</td><td> 2,8</td><td> 2,8</td><td> 3,2</td><td> 0,9</td><td> 2,3</td>
From the above Tables 7a and 7b, it can be seen that Examples 1-3 accomplish good chemical stability after exposure to acid HCl (boiling HCl for one hour) in both annealed and heat treated (e.g. heat-treated and / or bent) form. on hot). The lower the ΔΟ values, the better. Moreover, the examples also have acceptable durability, especially from the glass and transmission perspective, after exposure to NaOH. In certain example embodiments of this invention, coated articles are chemically stable such that they have a ΔΟ value.<sub>β</sub> (after 1 hr of cooking in HCl and / or NaOH) no greater than 4.0, more preferably no greater than 3.0 and most preferably no greater than 2.0.
Example 1 was found to have a shading factor (SC) of from about 0.25 to 0.45, especially from about 0.30 to 0.40. Generally, Examples 2-7 were found to have a SC slightly higher, that is from about 0.4 to 0.55, especially from about 0.42 to 0.49. Example 1 was found to have an SHGC of from about 0.25 to 0.35, especially from about 0.25 to 0.33; and Examples 2-7 were found to have a slightly higher SHGC of from about 0.35 to 0.45, especially from about 0.37 to 0.42.
Accordingly, the benefits of using Zr and / or ZrN in a solar control coating include:
(a) improved corrosion resistance with respect to an acid such as HCl;
(b) improved mechanical characteristics, such as better scratch resistance; and / or (c) improved thermal stability (i.e., lower ΔE * value (s)). In certain embodiments of this invention, coated articles may or may not be heat treated.
Certain terms are commonly used in the glass coating field, particularly in determining solar control properties and characteristics for coated glass. Such terms are used in this patent application according to their well-known meaning. For example, as used in this patent application.
The intensity of the reflected light in the visible wavelength, i.e., "reflectance", is determined by its percentage ratio and is reported as RXY (i.e., the Y value quoted below in ASTM E-308-85), where "X" stands for both " G "for the glass side and" F "for the movie side. "Glass side" (eg. "G") means to look from the side of the glass substrate opposite to that on which the coating is located, while the "film side" (ie, "F") means to look from the side of the glass substrate that supports the coating.
Color characteristics were measured and reported in this patent application using CIE LAB a *, b * coordinates and scale (i.e., CIE a * b *, I11. CIE-C, 2-point observation plot). Other similar coordinates may be used equivalently, such as subscript "h" to denote a conventional use of the Hunter Lab scale, or I11. CIE-C, 10 ° observation either
PL 208 586 B1 of the CIE LUV coordinates u * v *. These scales are defined in this patent application according to ASTM D-2244-93 "Standard Test Method for Calculation of Color Differences from Instrumentally Measured Color Coordinates" September 15, 1993, as extended in ASTM E-308-85, ASTM Standards Yearbook, Vol. 06.01 "Standard Method for Computing the Colors of Objects by 10 Using the CIE System" and / or as set out in IES LIGHTING HANDBOOK 1981 Reference Volume.
The terms "emittance" and "transmittance" are well understood and are used in this patent application according to their well-known meanings. Thus, for example, the term "transmittance" means solar energy transmittance, which is made up of visible light transmittance (TY), infrared radiation transmittance, and ultraviolet radiation transmittance. Total solar energy transmittance (TS) is therefore usually characterized as a weighted average of these values. With respect to these transmittances, visible transmittance (TY) as described in this patent application is determined by the standard CIE Illuminant C, 2-step observation technique at 380-730 nm; near infrared is 720-2500 nm; ultraviolet is 300-380 nm; and total solar radiation is 300-2500 nm. For the purposes of emittance, however, a specific infrared range (i.e., 2500-40,000 nm) is used.
Visible transmittance can be measured using known, conventional techniques. For example, using a spectrophotometer such as a Perkin Elmer Lambda 900 or Hitachi U4001, a spectral transmission curve is obtained. Visible transmittance is then calculated using the ASTM 308 / 12244-93 methodology mentioned above. Fewer points than recommended for each length may be used, if desired. Another technique for measuring visible transmittance is to use a spectrometer, such as the commercially available Spectrogard spectrophotometer manufactured by Pacific Scientific Corporation. This device measures and reports visible transmittance directly. As described and measured in this patent application, visible transmittance (i.e., the Y value in a CIE tristimulus system, ASTM E-308-85) uses I11. C, 2-step observation.
Another term used in this patent application is "specific resistance". Specific resistance (RS) is a well-known term and has been used in this patent application in accordance with its well-known meaning. It is expressed in this patent application in ohm units per unit area. Generally speaking, the term refers to the resistance in ohms per any square of a layer system on a glass substrate to the electric current flowing through the layer system. Specific resistance is an indicator of how well the layer or layer system is reflecting infrared energy, and is therefore often used along with emittance as a measure of this feature. For example, "specific resistance" may be conveniently measured with a 4 point ohmmeter such as a disposable 4 point resistivity tester from Magnetron Instruments Corp. Head, Model M-800 manufactured by Signatone Corp. from Santa Clara, California. "Chemical stability" or "chemically stable" is used in this patent application as synonymous with the terms "chemically resistant" or "chemically stable". For example, chemical stability can be determined by boiling a sample of the coated glass substrate in about 500 cubic centimeters of 5% HCl for one hour [i.e., about 195 ° F (90.5 ° C)]. This is what is meant by cooking in HCl according to the present patent application. Alternatively, chemical stability can be determined by cooking in NaOH, which includes boiling a sample of the coated glass substrate in a solution having a pH of about 12.2, that is, a mixture of water and NaOH (about 0.4% NaOH); the solution can be obtained from LabChem, Inc., Cat. Well. LC 24270-4 (this is what is meant by cooking in NaOH according to the present patent application). Cooking in NaOH may be performed at about 145 ° F (63 ° C) (examples above) or about 195 ° F (90.5 ° C) in other instances.
The terms "heat treatment" and "heat treatment" as used herein mean heating the article to a temperature sufficient to allow the glass-containing article to be tempered, bent, or hot straightened. This definition includes, for example, heating a coated article to a temperature of at least about 580 ° C for a time sufficient to permit improvement. In some cases, the heat treatment may be for at least about 4 or 5 minutes. Many other features, changes, and improvements will become apparent to those skilled in the art upon giving the above disclosure. Such other features, changes and improvements are therefore considered part of the present invention, the scope of which is defined in the following claims.
Contents4
2 sheets
Sheet 1 Sheet 2
9 members in 6 offices
Priority claims3
| Document | Office | Kind | Date |
|---|---|---|---|
| 29502802 | United States of America | A | |
| 10295028 | – | – | – |
| US20020295028 | – | – | – |
Members9
| Document | Office | Kind | |
|---|---|---|---|
| US2004096671A1 | United States of America | A1 | |
| CA2504541A1 | Canada | A1 | |
| WO2004046058A1 | World Intellectual Property Organization (WIPO) | A1 | |
| AU2003291489A1 | Australia | A1 | |
| US6881487B2 | United States of America | B2 | |
| EP1572597A1 | European Patent Office (EPO) | A1 | |
| PL377068A1 | Poland | A1 | |
| CA2504541C | Canada | C | |
| PL208586B1This record | Poland | B1 |
1 legal event, as the office reported them to INPADOC
Events
| Event | Code | |
|---|---|---|
| Rectifications of patent specificationRECP | RECP |
Numbers
- Publication
- 208586
- Publication, DOCDB
- 208586
- Publication, EPODOC
- PL208586B
- Application
- 377068
- Application, DOCDB
- 37706803
- Application, EPODOC
- PL20030377068
Titles2
- English
- HEAT TREATABLE COATED ARTICLES WITH ZIRCONIUM OR ZIRCONIUM NITRIDE LAYER AND METHODS OF MAKING SAME
- Polish
- Wyroby powlekane
Classification
- CPC, 8
- C03C17/3613
- C03C17/3435
- C03C17/36
- C03C17/3626
- C03C17/3649
- C03C17/366
- C03C17/3681
- C03C2217/78
- IPC, 2
- C03C17 36
- C03C17 34
