WO2016057590A1 - Glass article with determined stress profile and method of producing the same - Google Patents

Glass article with determined stress profile and method of producing the same Download PDF

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Publication number
WO2016057590A1
WO2016057590A1 PCT/US2015/054348 US2015054348W WO2016057590A1 WO 2016057590 A1 WO2016057590 A1 WO 2016057590A1 US 2015054348 W US2015054348 W US 2015054348W WO 2016057590 A1 WO2016057590 A1 WO 2016057590A1
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WO
WIPO (PCT)
Prior art keywords
clad layer
glass article
compressive
region
layer
Prior art date
Application number
PCT/US2015/054348
Other languages
French (fr)
Inventor
Vladislav Yuryevich Golyatin
Jason Thomas HARRIS
Guangli Hu
Gautam Meda
Butchi Reddy Vaddi
Natesan Venkataraman
Original Assignee
Corning Incorporated
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Corning Incorporated filed Critical Corning Incorporated
Priority to EP15782216.4A priority Critical patent/EP3204337B1/en
Priority to CN202211264107.8A priority patent/CN115504681A/en
Priority to CN201580066395.8A priority patent/CN107001096A/en
Priority to US15/516,961 priority patent/US11123959B2/en
Priority to KR1020177012337A priority patent/KR20170066580A/en
Priority to JP2017518965A priority patent/JP6889106B2/en
Publication of WO2016057590A1 publication Critical patent/WO2016057590A1/en

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B17/00Layered products essentially comprising sheet glass, or glass, slag, or like fibres
    • B32B17/06Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C17/00Surface treatment of glass, not in the form of fibres or filaments, by coating
    • C03C17/02Surface treatment of glass, not in the form of fibres or filaments, by coating with glass
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B17/00Forming molten glass by flowing-out, pushing-out, extruding or drawing downwardly or laterally from forming slits or by overflowing over lips
    • C03B17/02Forming molten glass coated with coloured layers; Forming molten glass of different compositions or layers; Forming molten glass comprising reinforcements or inserts
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B17/00Forming molten glass by flowing-out, pushing-out, extruding or drawing downwardly or laterally from forming slits or by overflowing over lips
    • C03B17/06Forming glass sheets
    • C03B17/064Forming glass sheets by the overflow downdraw fusion process; Isopipes therefor
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C21/00Treatment of glass, not in the form of fibres or filaments, by diffusing ions or metals in the surface
    • C03C21/001Treatment of glass, not in the form of fibres or filaments, by diffusing ions or metals in the surface in liquid phase, e.g. molten salts, solutions
    • C03C21/002Treatment of glass, not in the form of fibres or filaments, by diffusing ions or metals in the surface in liquid phase, e.g. molten salts, solutions to perform ion-exchange between alkali ions
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2250/00Layers arrangement
    • B32B2250/033 layers

Definitions

  • This disclosure relates generally to glass articles, and more particularly to strengthened glass articles having a determined stress profile.
  • Glass articles can be used in a wide variety of products including, for example, cover glass (e.g., for touch-screen devices such as smartphones, tablets, laptop computers, and monitors), auto-glazing, architectural panels, and appliances.
  • cover glass e.g., for touch-screen devices such as smartphones, tablets, laptop computers, and monitors
  • auto-glazing e.g., for auto-glazing
  • architectural panels e.g., for architectural panels, and appliances.
  • Relatively large flaws can be introduced into the surfaces of glass articles during use. For example, it has been observed that flaws as deep as 300 ⁇ have been introduced into a cover glass of a smartphone as a result of dropping the smartphone. Thus, it would be desirable for glass articles to have a high strength performance against deep flaws to improve the mechanical reliability of the glass articles.
  • a laminated glass article comprising a core layer and a clad layer directly adjacent to the core layer.
  • the core layer comprises a core glass composition.
  • the clad layer comprises a clad glass composition.
  • An average clad coefficient of thermal expansion (CTE) of the clad glass composition is less than an average core CTE of the core glass composition such that the clad layer is in
  • a compressive stress of the clad layer decreases with increasing distance from an outer surface of the clad layer within an outer portion of the clad layer.
  • the compressive stress of the clad layer remains substantially constant with increasing distance from the outer surface of the clad layer within an intermediate portion of the clad layer disposed between the outer portion of the clad layer and the core layer.
  • a thickness of the intermediate portion of the clad layer is at least about 82% of a thickness of the clad layer
  • a glass article comprising a tensile region and a compressive region comprising an inner surface directly adjacent to the tensile region and an outer surface opposite the inner surface.
  • An outer portion of the compressive region extends from the outer surface of the compressive region inward toward the tensile region to an outer depth of layer (DOL).
  • An intermediate portion of the compressive region extends from the outer DOL inward toward the tensile region to an intermediate DOL.
  • a compressive stress profile of the compressive region comprises a first compressive stress CSi and a second compressive stress CS 2 .
  • a compressive stress of the outer portion is CSi at the outer surface and CS 2 at the outer DOL.
  • a compressive stress of the intermediate portion is substantially constant at CS 2 .
  • FIG. 1 is a partial cross-sectional view of one exemplary embodiment of a laminate structure of a glass article.
  • FIG. 2 is a cross-sectional view of one exemplary embodiment of a forming apparatus that can be used to form a glass article.
  • FIG. 3 is a graphical illustration comparing an exemplary mechanical stress profile generated by CTE mismatch alone and an exemplary chemical stress profile generated by chemical strengthening alone.
  • FIG. 4 is a graphical illustration of an exemplary combined stress profile formed by a combination of mechanical strengthening and chemical strengthening.
  • FIG. 5 is a graphical illustration comparing exemplary retained strength profiles corresponding to stress profiles generated by chemical strengthening alone and a combination of mechanical strengthening and chemical strengthening.
  • FIG. 6 is a graphical illustration of an exemplary stress profile formed by a combination of mechanical strengthening, chemical strengthening, and ion exchange between the compressive region and the tensile region.
  • the term “average coefficient of thermal expansion,” or “average CTE,” refers to the average coefficient of linear thermal expansion of a given material or layer between 0 °C and 300 °C.
  • coefficient of thermal expansion or “CTE,” refers to the average coefficient of thermal expansion unless otherwise indicated.
  • Chemically strengthened glass is used as a cover glass for a variety of consumer electronics devices (e.g., smartphones, tablet computers, personal computers, ultrabooks, televisions, and cameras). Breakage of such cover glass can be caused by dropping the electronic device.
  • the two predominant failure modes of cover glass that result from dropping an electronic device are flexure failure and sharp contact failure. Flexure failure is caused by the cover glass bending as a result of the dynamic load to which the electronic device is subjected upon contacting the ground or other surface onto which the electronic device is dropped.
  • Sharp contact failure is caused by sharp indentation on the cover glass surface when the glass drops onto a rough surface (e.g., asphalt, granite, gravel, etc.), which introduces damage into the cover glass.
  • Chemical strengthening can significantly improve resistance of the cover glass to flexure failure by creating a compressive stress on the surface of the cover glass.
  • the chemically strengthened cover glass may be vulnerable to dynamic sharp contact failure because of the high stress concentration caused by the local indentation at the point of contact and depth of the flaws (e.g., up to about 300 ⁇ ) that can be generated by such contact compared to the depth of the compressive layer (e.g., up to about 80 ⁇ ). If the flaw is sufficiently deep to penetrate through the compressive stress region, the cover glass may fail.
  • increasing the surface compressive stress of the cover glass and/or increasing the depth of the compressive layer can increase the resistance of the cover glass to failure caused by deep flaws, both of these techniques also increase the central tension of the cover glass. If the central tension is increased above a frangibility limit, the cover glass can exhibit frangible behavior, or extreme fragmentation behavior.
  • a glass article comprises a tensile region and a compressive region directly adjacent to the tensile region.
  • the tensile region comprises a core layer of the glass article and the compressive region comprises a cladding layer of the glass article.
  • the compressive region comprises a first compressive region and a second compressive region, and the tensile region is disposed between the first compressive region and the second compressive region.
  • the cladding layer comprises a first cladding layer and a second cladding layer, and the core layer is disposed between the first cladding layer and the second cladding layer.
  • the glass article can be symmetrical, meaning that the first compressive region and the second compressive region (and the respective stress profiles) are mirror images of each other.
  • the glass article can be asymmetrical, meaning that the first compressive region and the second compressive region are not mirror images of each other.
  • the compressive region comprises an inner surface directly adjacent to the tensile region and an outer surface opposite the inner surface.
  • An outer portion of the compressive region extends from the outer surface of the compressive region inward toward the tensile region to an outer depth of layer (DOL).
  • An intermediate portion of the compressive region extends from the outer DOL inward toward the tensile region to an intermediate DOL.
  • the compressive stress region comprises a determined compressive stress profile comprising a first
  • CSi comprises a maximum compressive stress of the compressive region and/or CS2 comprises a minimum compressive stress of the compressive region. Additionally, or alternatively, a compressive stress of the outer portion of the
  • CSi at the outer surface and CS2 at the outer DOL
  • a compressive stress of the intermediate portion is substantially constant at CS2.
  • the compressive stress of the intermediate portion is within about 10%, within about 5%, within about 2%, or within about 1 % of CS2 throughout the thickness of the intermediate portion.
  • the slope of the stress profile (e.g., the slope of a linear trend line of the compressive stress as a function of depth within the glass article determined using simple linear regression) throughout the intermediate portion of the compressive region is substantially zero (e.g., between about -7 MPa/ ⁇ and about 7 MPa/ ⁇ , between about -5 MPa/ ⁇ and about 5 MPa/ ⁇ , between about -3 MPa/ ⁇ and about 3 MPa/ ⁇ , or between about -1 MPa/ ⁇ and about 1 MPa/ ⁇ ).
  • the compressive stress region further comprises an inner portion extending from the intermediate DOL inward toward the tensile region to an inner DOL.
  • the determined compressive stress profile further comprises a third compressive stress CS3 that is between CSi and CS2.
  • a compressive stress of the inner portion is CS2 or substantially equal to CS2 at the intermediate DOL and CS3 at the inner DOL.
  • FIG. 1 is a cross-sectional view of one exemplary embodiment of a glass article 100.
  • glass article 100 comprises a laminate sheet comprising a plurality of glass layers.
  • the laminate sheet can be substantially planar (i.e., flat) as shown in FIG. 1 or non-planar (i.e., curved).
  • the glass article comprises a shaped glass article.
  • the laminated sheet is contacted with a forming surface of a mold to form the shaped glass article.
  • Glass article 100 comprises a core layer 102 disposed between a first cladding layer 104 and a second cladding layer 106.
  • first cladding layer 104 and second cladding layer 106 are exterior layers as shown in FIG. 1.
  • the first cladding layer and/or the second cladding layer are intermediate layers disposed between the core layer and an exterior layer.
  • Core layer 102 comprises a first major surface and a second major surface opposite the first major surface.
  • first cladding layer 104 is fused to the first major surface of core layer 102.
  • second cladding layer 106 is fused to the second major surface of core layer 102.
  • the interfaces between first cladding layer 104 and core layer 102 and/or between second cladding layer 106 and core layer 102 are free of any bonding material such as, for example, a polymer interlayer, an adhesive, a coating layer, or any non-glass material added or configured to adhere the respective cladding layers to the core layer.
  • first cladding layer 104 and/or second cladding layer 106 are fused directly to core layer 102 or are directly adjacent to core layer 102.
  • the glass article comprises one or more intermediate layers disposed between the core layer and the first cladding layer and/or between the core layer and the second cladding layer.
  • the intermediate layers comprise intermediate glass layers and/or diffusion layers formed at the interface of the core layer and the cladding layer.
  • the diffusion layer can comprise a blended region comprising components of each layer adjacent to the diffusion layer.
  • glass sheet 100 comprises a glass-glass laminate (e.g., an in situ fused multilayer glass-glass laminate) in which the interfaces between directly adjacent glass layers are glass-glass interfaces.
  • core layer 102 comprises a core glass composition
  • first and/or second cladding layers 104 and 106 comprise a clad glass composition that is different than the core glass composition.
  • the core glass composition and the clad glass composition are different from each other prior to chemically strengthening the glass article as described herein.
  • core layer 102 comprises the core glass composition
  • each of first cladding layer 104 and second cladding layer 106 comprises the clad glass composition.
  • the first cladding layer comprises a first clad glass composition
  • the second cladding layer comprises a second clad glass composition that is different than the core glass composition and/or the first clad glass composition.
  • FIG. 2 is a cross-sectional view of one exemplary embodiment of an overflow distributor 200 that can be used to form a glass article such as, for example, glass article 100.
  • Overflow distributor 200 can be configured as described in U.S. Patent No. 4,214,886, which is incorporated herein by reference in its entirety.
  • overflow distributor 200 comprises a lower overflow distributor 220 and an upper overflow distributor 240 positioned above the lower overflow distributor.
  • Lower overflow distributor 220 comprises a trough 222.
  • a core glass composition 224 is melted and fed into trough 222 in a viscous state.
  • Core glass composition 224 forms core layer 102 of glass article 100 as further described below.
  • Upper overflow distributor 240 comprises a trough 242.
  • composition 244 is melted and fed into trough 242 in a viscous state. Clad glass composition 244 forms first and second cladding layers 104 and 106 of glass article 100 as further described below.
  • Core glass composition 224 overflows trough 222 and flows down opposing outer forming surfaces 226 and 228 of lower overflow distributor 220. Outer forming surfaces 226 and 228 converge at a draw line 230. The separate streams of core glass composition 224 flowing down respective outer forming surfaces 226 and 228 of lower overflow distributor 220 converge at draw line 230 where they are fused together to form core layer 102 of glass article 100.
  • Clad glass composition 244 overflows trough 242 and flows down opposing outer forming surfaces 246 and 248 of upper overflow distributor 240. Clad glass composition 244 is deflected outward by upper overflow distributor 240 such that the clad glass composition flows around lower overflow distributor 220 and contacts core glass composition 224 flowing over outer forming surfaces 226 and 228 of the lower overflow distributor. The separate streams of clad glass composition 244 are fused to the respective separate streams of core glass composition 224 flowing down respective outer forming surfaces 226 and 228 of lower overflow distributor 220.
  • clad glass composition 244 forms first and second cladding layers 104 and 106 of glass article 100.
  • core glass composition 224 of core layer 102 in the viscous state is contacted with clad glass composition 244 of first and second cladding layers 104 and 106 in the viscous state to form the laminated sheet.
  • the laminated sheet is part of a glass ribbon traveling away from draw line 230 of lower overflow distributor 220 as shown in FIG. 2.
  • the glass ribbon can be drawn away from lower overflow distributor 220 by a suitable means including, for example, gravity and/or pulling rollers.
  • the glass ribbon cools as it travels away from lower overflow distributor 220.
  • the glass ribbon is severed to separate the laminated sheet therefrom. Thus, the laminated sheet is cut from the glass ribbon.
  • glass ribbon can be severed using a suitable technique such as, for example, scoring, bending, thermally shocking, and/or laser cutting.
  • glass article 100 comprises the laminated sheet as shown in FIG. 1.
  • the laminated sheet can be processed further (e.g., by cutting or molding) to form glass article 100.
  • a glass article 100 shown in FIG. 1 comprises three layers, other embodiments are included in this disclosure.
  • a glass article can have a determined number of layers, such as two, four, or more layers.
  • a glass article comprising two layers can be formed using two overflow distributors positioned so that the two layers are joined while traveling away from the respective draw lines of the overflow distributors or using a single overflow distributor with a divided trough so that two glass compositions flow over opposing outer forming surfaces of the overflow distributor and converge at the draw line of the overflow distributor.
  • a glass article comprising four or more layers can be formed using additional overflow distributors and/or using overflow distributors with divided troughs.
  • a glass article having a determined number of layers can be formed by modifying the overflow distributor accordingly.
  • glass article 100 comprises a thickness of at least about 0.05 mm, at least about 0.1 mm, at least about 0.2 mm, or at least about 0.3 mm. Additionally, or alternatively, glass article 100 comprises a thickness of at most about 3 mm, at most about 2 mm, at most about 1 .5 mm, at most about 1 mm, at most about 0.7 mm, or at most about 0.5 mm. For example, glass article comprises a thickness of from about 0.1 mm to about 3 mm, from about 0.1 mm to about 1 mm, or from about 0.3 mm to about 0.7 mm.
  • a ratio of a thickness of core layer 102 to a thickness of glass article 100 is at least about 0.5, at least about 0.7, at least about 0.8, at least about 0.85, at least about 0.9, or at least about 0.95.
  • a thickness of the second layer (e.g., each of first cladding layer 104 and second cladding layer 106) is from about 0.01 mm to about 0.3 mm.
  • glass article 100 is mechanically strengthened.
  • the clad glass composition of first and/or second cladding layers 104 and 106 comprises a different average coefficient of thermal expansion (CTE) than the core glass composition of core layer 102.
  • first and second cladding layers 104 and 106 are formed from a glass composition having a lower average CTE than core layer 102.
  • the CTE mismatch i.e., the difference between the average CTE of first and second cladding layers 104 and 106 and the average CTE of core layer 102 results in formation of compressive stress in the cladding layers and tensile stress in the core layer upon cooling of glass article 100.
  • the average CTE of core layer 102 and the average CTE of first and/or second cladding layers 104 and 106 differ by at least about
  • the average CTE of core layer 102 and the average CTE of first and/or second cladding layers 104 and 106 differ by at most about 100x10 "7o C “1 , at most about 75x10 “7o C “1 , at most about 50x10 "7o C “1 , at most about 40x10 “7o C “1 , at most about 30x10 "7o C “1 , at most about 20x10 “7o C “1 , or at most about 10x10 "7o C “1 .
  • the clad glass composition comprises an average CTE of at most about 66x10 "7o C “1 , at most about 55x10 “7o C “1 , at most about 50x10 "7o C “1 , at most about 40x10 "7o C “1 , or at most about 35x10 “7o C “1 . Additionally, or alternatively, the clad glass composition comprises an average CTE of at least about 10x10 "7o C “1 , at least about 15x10 "7o C “1 , at least about 25x10 "7o C “1 , or at least about 30x10 "7o C “1 .
  • the core glass composition comprises an average CTE of at least about 40x10 "7o C “1 , at least about 50x10 “7o C “1 , at least about 55x10 “7o C “1 , at least about 65x10 “7o C “1 , at least about 70x10 “7o C “1 , at least about 80x10 “7o C “1 , or at least about 90x10 "7o C “1 .
  • the core glass composition comprises an average CTE of at most about 120x10 "7o C “1 , at most about 1 10x10 “7o C “1 , at most about 100x10 "7o C “1 , at most about 90x10 "7o C “1 , at most about 75x10 "7o C “1 , or at most about 70x10 "7o C “1 .
  • glass article 100 is chemically strengthened.
  • glass article 100 is strengthened using an ion exchange treatment to increase the compressive stress in a region of the glass article near an outer surface of the glass article (e.g., an outer portion of the compressive region as described herein).
  • the ion exchange treatment comprises applying an ion exchange medium to one or more surfaces of glass article 100.
  • the ion exchange medium comprises a solution, a paste, a gel, or another suitable medium comprising larger ions to be exchanged with smaller ions in the glass matrix.
  • the compressive layer of glass article 100 comprises an alkali aluminosilicate glass.
  • the ion exchange medium comprises a molten salt solution
  • the ion exchange treatment comprises immersing the laminated glass article in a molten salt bath comprising larger ions (e.g., K + and/or Na + ) to be exchanged with smaller ions (e.g., Na + and/or Li + ) in the glass matrix.
  • the molten salt bath comprises a salt (e.g., a nitrate, a sulfate, and/or a chloride) of the larger alkali metal ion.
  • the molten salt bath comprises molten KNO3, molten NaNO3, or a combination thereof.
  • the temperature of the molten salt bath is from about 380°C to about 450°C, and an immersion time is from about 2 hours to about 16 hours.
  • FIG. 3 is a graphical illustration comparing an exemplary mechanical stress profile 302 generated by CTE mismatch alone and an exemplary chemical stress profile 304 generated by chemical strengthening alone.
  • the stress profiles are represented by the stress as a function of depth within the glass article. The depth within the glass article, given as the distance from an outer surface of the glass article, is plotted on the x-axis, and the stress is plotted on the y-axis.
  • the compressive region (e.g., the clad layer) has a thickness of about 50 ⁇ and a first compressive stress of about 150 MPa.
  • Mechanical stress profile 302 is a step function.
  • the compressive stress is substantially constant at the surface compressive stress throughout the compressive region, and the stress transitions from the surface compressive stress to the maximum tensile stress as a step change at the interface between the compressive region and the tensile region (e.g., at the interface between the clad layer and the core layer).
  • the compressive region extends to a DOL of about 80 ⁇ and has a surface compressive stress of about 900 MPa.
  • the stress transitions continuously from the surface compressive stress at the outer surface of the compressive region to the maximum tensile stress within the tensile region.
  • chemical stress profile 304 does not have a region of constant compressive stress or a step change between the
  • glass article 100 is strengthened by a combination of mechanical strengthening and chemical strengthening.
  • glass article 100 comprising a CTE mismatch as described herein e.g., a glass laminate
  • FIG. 4 is a graphical illustration of an exemplary combined stress profile formed by a combination of mechanical strengthening and chemical strengthening.
  • the stress profile of a glass article can be measured using any suitable technique including, for example, using a birefringence based measurement technique or a refracted near-field (RNF) technique.
  • RMF refracted near-field
  • the stress profile comprises the stress in glass article 100 as a function of depth within the glass article.
  • the depth within glass article 100 given as the distance from an outer surface of the glass article, is plotted on the x-axis, and the stress is plotted on the y-axis.
  • the depth within the glass article may be referred to herein as depth of layer (DOL).
  • Compressive stress is shown on the positive y-axis, and tensile stress is shown on the negative y-axis.
  • the values of compressive and tensile stresses described herein refer to the absolute values of the stresses.
  • tensile stresses are given herein as positive values as opposed to negative values. It will be recognized that FIG. 4
  • the stress profile through the remaining portion of the thickness of the glass article is a mirror image of illustrated portion of the stress profile shown in FIG. 4.
  • the compressive region e.g., the clad layer
  • the first compressive stress of about 900 MPa
  • a second compressive stress of about 100 MPa.
  • the compressive stress region comprises an outer portion extending from the outer surface of the compressive region inward toward the tensile region to an outer DOL, and an intermediate portion extending from the outer DOL inward toward the tensile region to an intermediate DOL.
  • the outer portion of the compressive region comprises a surface ion exchanged region in which the glass composition profile and/or stress profile are generated, at least in part, by diffusion of larger ions into the glass matrix and smaller ions out of the glass matrix within the ion exchanged region (e.g., by subjecting the laminated glass article to the ion exchange treatment as described herein).
  • the surface ion exchanged region can be identified as having a stress profile with a particular shape indicating that it was generated at least partially by an ion exchange treatment (e.g., an error function). Additionally, or alternatively, the surface ion exchanged region can be identified as a region at the surface of the glass article in which compressive stress decreases as a function of depth within the glass article, compared to the substantially constant compressive stress within the intermediate portion of the compressive region. In the example shown in FIG. 4, the outer DOL is about 10 ⁇ , and the intermediate DOL is about 125 ⁇ .
  • the thickness of the outer portion of the compressive region (represented by the outer DOL) is about 8% of the thickness of the compressive region or the clad layer, and the thickness of the intermediate portion of the compressive region is about 92% of the thickness of the compressive region or the clad layer.
  • the thickness of the outer portion of the compressive region is at most about 18%, at most about 16%, at most about 14%, at most about 12%, at most about 10%, at most about 8%, at most about 6%, at most about 4%, or at most about 2% of the thickness of the compressive region.
  • the thickness of the outer portion of the compressive region is at least about .1 %, at least about 0.5%, or at least about 1 % of the thickness of the compressive region.
  • the thickness of the intermediate portion of the compressive region is at least about 82%, at least about 84%, at least about 86%, at least about 88%, at least about 90%, at least about 92%, at least about 94%, at least about 96%, or at least about 98% of the thickness of the compressive region.
  • compressive region is at most about 99.9%, at most about 99.5%, or at most about 99% of the thickness of the compressive region. Restricting the thickness of the outer portion of the compressive region, or increasing the thickness of the intermediate portion of the compressive region, can enable a combination of improved retained strength and relatively low tensile stress within the glass article as described herein (e.g., by providing relatively high surface compressive stress, relatively thick
  • the compressive stress decreases rapidly and continuously from the first compressive stress at the outer surface of the compressive region to the second compressive stress at the outer DOL, remains substantially constant at the second compressive stress from the outer DOL to the inner DOL, and then transitions from the second compressive stress to the maximum tensile stress as a step change at the interface between the compressive region and the tensile region.
  • the intermediate DOL is equal to the thickness of the clad layer. In other embodiments, the intermediate DOL is less than the thickness of the clad layer.
  • glass article 100 is chemically strengthened to increase the compressive stress in the outer portion of the clad layer without increasing the compressive stress in the intermediate portion of the clad layer.
  • the chemical strengthening is performed in such a manner that less than an entire thickness of the compressive layer is chemically strengthened and the compressive layer comprises the intermediate portion with the substantially constant compressive stress, as described herein, after chemical strengthening.
  • the time over which chemical strengthening is performed and/or the temperature at which chemical strengthening is performed can be limited to limit the depth of the ion exchanged region.
  • the retained strength of a glass article can be determined based on the stress profile of the glass article.
  • the retained strength is determined by forming a flaw extending from a surface of the glass article to a specified depth and then determining the strength of the glass article after formation of the flaw.
  • the strength is the flexural strength of the glass article determined using, for example, a ring-on-ring test method (e.g., as described in ASTM C1499-09), a ball-on-ring test method, a three-point bend test method, a four-point bend test method, or another suitable method or technique.
  • Such a retained strength determination can be conducted using a fracture mechanics simulation based on the stress profile of the glass article.
  • FIG. 5 is a graphical illustration comparing exemplary retained strength profiles corresponding to stress profiles generated by chemical strengthening alone and a combination of mechanical strengthening and chemical strengthening.
  • the retained strength profiles are represented by the retained strength as a function flaw size.
  • the flaw size given as the distance from an outer surface of the glass article to which the flaw extends, is plotted on the x-axis, and the retained strength is plotted on the y-axis.
  • Chemical retained strength profile 504 was generated using a fracture mechanics simulation based on chemical stress profile 304 shown in FIG. 3, and combined retained strength profile 506 was generated using a fracture mechanics simulation based on the combined stress profile shown in FIG. 4.
  • each of chemical retained strength profile 504 and combined retained strength profile 506 comprises a relatively high retained strength (e.g., at least about 200 MPa) near the outer surface of the glass article, which can aid in avoiding breakage of the glass article as a result of relatively shallow flaws (e.g., less than about 10 ⁇ ).
  • relatively high retained strength e.g., at least about 200 MPa
  • combined retained strength profile 506 maintains a higher retained strength than chemical retained strength profile 504 deeper into the glass article.
  • the retained strength of combined retained strength profile 506 is higher than that of chemical retained strength profile 504 for flaw sizes from about 70 ⁇ to about 300 ⁇ , which can aid in avoiding breakage of the glass article as a result of relatively deep flaws.
  • Flaws introduced into a cover glass as a result of dropping an electronic device generally have flaw sizes from about 70 ⁇ to about 300 ⁇ .
  • improved resistance to breakage resulting from such flaw sizes translates into improved drop performance for a cover glass comprising a retained strength profile similar to combined retained strength profile 506 as compared to retained strength profile 504.
  • the improved resistance to breakage resulting from large flaws can be achieved by combined retained strength profile 506 without substantially increasing the maximum tensile stress of the tensile region as compared to retained strength profile 504.
  • maintaining the compressive stress at a relatively constant level relatively deep into the compressive region can help to maintain the area under the compressive portion of the stress profile curve, which is proportional to the maximum tensile stress in the tensile region, relatively low while also providing protection against breakage caused by relatively deep flaws.
  • the maximum tensile stress can be maintained below the frangibility limit.
  • the distance between the outer DOL and the intermediate DOL is sufficiently large to maintain relatively high compressive stress deep into the glass article (e.g., to achieve improved resistance to breakage resulting from large flaws) without increasing the maximum tensile stress to an unacceptable level (e.g., above the frangibility limit).
  • the glass article is strengthened by ion exchange between the compressive region and the tensile region to form an inner portion of the compressive region adjacent to the tensile region and having an increased compressive stress relative to the intermediate portion of the compressive region.
  • the inner portion of the compressive region comprises an interface ion exchanged region in which the glass composition profile and/or stress profile are generated, at least in part, by diffusion of larger ions into the glass matrix and smaller ions out of the glass matrix within the interface ion exchanged region (e.g., by ion exchange between the clad layer and the core layer at the interface therebetween as described herein).
  • the interface ion exchanged region can be identified as having a stress profile with a particular shape indicating that it was generated at least partially by ion exchange (e.g., an error function).
  • the interface ion exchanged region can be identified as a region at the interface between the compressive region and the tensile region in which compressive stress increases as a function of depth within the glass article, compared to the substantially constant compressive stress within the
  • first clad layer 104 and/or second clad layer 106 comprise a relatively low CTE, ion-exchangeable glass composition
  • core layer 102 comprises a relatively high CTE, ion exchangeable glass composition.
  • Suitable glass compositions can include those described in U.S. Patent Application Pub. No.
  • the core glass comprises a sufficiently high CTE for mechanical strengthening of the glass article and a sufficient K 2 O concentration for interfacial ion-exchange.
  • Table 1 Exemplary Low CTE Ion-Exchangeable Clad Glass Compositions
  • Table 1 Exemplary Low CTE Ion-Exchangeable Clad Glass Compositions (continued)
  • Table 1 Exemplary Low CTE Ion-Exchangeable Clad Glass Compositions (continued)
  • the core glass comprises large radius, mobile cations (e.g., K + and/or Cs + ) capable of exchanging with small radius, mobile cations (e.g., Na + and/or Li + ) in the clad glass.
  • mobile cations e.g., K + and/or Cs +
  • mobile cations e.g., Na + and/or Li +
  • the larger ions in the core glass exchange with the smaller ions in the clad glass.
  • heating glass article 100 during lamination is sufficient to cause the ion exchange between the clad layers and the core layer without any additional or subsequent ion exchange heat treatment.
  • the ion exchange between the core layer and the clad layers increases the compressive stress in the inner portion of the compressive region extending from the intermediate DOL inward toward the tensile region to an inner DOL.
  • Table 2 Exemplary Core Glass Compositions
  • the clad glass comprises an ion-exchangeable glass with a sufficiently low CTE for mechanical strengthening of the glass article.
  • the clad glass comprises about 65 mol.% to about 70 mol.% SiO 2 ; about 9 mol.% to about 14 mol.% AI 2 O 3 ; and about 0 mol.% to about 1 1 mol.% B2O3 as glass network formers; about 5 mol.% to about 10 mol.% alkali oxide R2O, wherein R is at least one of Li, Na, and K; and about 3 mol.% to about 1 1 mol.% of divalent oxide MO, wherein M is at least one of Mg, Ca, Ba, and Zn.
  • Such glass compositions generally have an average CTE that is less than or equal to 55x10 "7 /°C and are amenable to strengthening by ion-exchange.
  • the clad glass comprises about 65 mol.% to about 68 mol.% SiO 2 ; about 10 mol.% to about 13 mol.% AI 2 O 3 ; and about 6 mol.% to about 9 mol.% B2O3 as glass network formers; about 6 mol.% to about 9 mol.% alkali oxide R2O, wherein R is at least one of Li, Na, and K; and about 7 mol.% to about 10 mol.% of divalent oxide MO, wherein M is at least one of Mg, Ca, Ba, and Zn.
  • Such glass compositions generally have an average CTE that is less than or equal to 55x10 "7 /°C and are amenable to strengthening by ion-exchange.
  • FIG. 6 is a graphical illustration of an exemplary stress profile formed by a combination of mechanical strengthening, chemical strengthening, and ion exchange between the compressive region and the tensile region.
  • mechanical strengthening chemical strengthening
  • ion exchange between the compressive region and the tensile region.
  • the compressive region has a thickness of about 125 ⁇ , a first compressive stress of about 600 MPa, a second compressive stress of about 100 MPa, and a third compressive stress of about 300 MPa.
  • the compressive stress region comprises an outer portion (e.g., a surface ion exchanged region) extending from the outer surface of the compressive region inward toward the tensile region to an outer DOL, an outer portion (e.g., a surface ion exchanged region) extending from the outer surface of the compressive region inward toward the tensile region to an outer DOL, an outer portion (e.g., a surface ion exchanged region) extending from the outer surface of the compressive region inward toward the tensile region to an outer DOL, an outer portion (e.g., a surface ion exchanged region) extending from the outer surface of the compressive region inward toward the tensile region to an outer DOL, an outer portion (e.g., a surface i
  • the outer DOL is about 10 ⁇
  • the intermediate DOL is about 1 15 ⁇
  • the inner DOL is about 125 ⁇ .
  • the compressive stress decreases rapidly and continuously from the first compressive stress at the outer surface of the compressive region to the second compressive stress at the outer DOL, remains substantially constant at the second compressive stress from the outer DOL to the intermediate DOL, increases rapidly and continuously from the second compressive stress at the intermediate DOL to the third compressive stress at the inner DOL, and then transitions from the third compressive stress to the maximum tensile stress as a step change at the interface between the compressive region and the tensile region.
  • the increased compressive stress of the inner portion of the compressive region can further increase the resistance of the glass article to breakage caused by deep flaws without increasing the maximum tension of the tensile region sufficiently to cause the glass article to display frangible behavior.
  • CSi is at least about 400 MPa, at least about 500 MPa, at least about 600 MPa, at least about 700 MPa, at least about 800 MPa, or at least about 900 MPa. Additionally, or alternatively, CSi is at most about 1000 MPa or at most about 900 MPa. For example, CSi is from about 400 MPa to about 1000 MPa.
  • CS 2 is at least about 50 MPa, at least about 100 MPa, at least about 200 MPa, or at least about 300 MPa. Additionally, or alternatively, CS 2 is at most about 450 MPa, at most about 400 MPa, at most about 300 MPa, or at most about 200 MPa. For example, CS 2 is from about 50 MPa to about 450 MPa.
  • CS 3 is at least about 100 MPa, at least about 200 MPa, at least about 300 MPa, or at least about 400 MPa. Additionally, or alternatively, CS 3 is at most about 800 MPa, at most about 700 MPa, or at most about 600 MPa. For example, CS 3 is from about 100 MPa to about 800 MPa.
  • the outer DOL is at least about 10 ⁇ , at least about 20 ⁇ , at least about 30 ⁇ , or at least about 40 ⁇ . Additionally, or alternatively, the outer DOL is at most about 50 ⁇ , at most about 40 ⁇ , or at most about 30 ⁇ . For example, the outer DOL is from about 10 ⁇ to about 50 ⁇ .
  • the intermediate DOL is at least about 30 ⁇ , at least about 50 ⁇ , at least about 70 ⁇ , or at least about 90 ⁇ . Additionally, or
  • the intermediate DOL is at most about 250 ⁇ , at most about 200 ⁇ , at most about 170 ⁇ , at most about 150 ⁇ , at most about 130 ⁇ , at most about 120 ⁇ , at most about 100 ⁇ , at most about 80 ⁇ , or at most about 60 ⁇ .
  • intermediate DOL is from about 30 ⁇ to about 250 ⁇ .
  • the inner DOL corresponds to the interface between the compressive region and the tensile region.
  • the inner DOL is equal to or substantially equal to the thickness of the respective clad layer of the glass article.
  • the glass article comprises a laminated glass composite comprising a first glass layer and a second glass layer.
  • the first glass layer comprises a first glass composition
  • the second glass layer comprises a second glass composition that is different than the first glass composition.
  • the first glass layer comprises an exterior surface and an interior surface.
  • the second glass layer directly contacts the interior surface of the first glass layer.
  • the first glass layer is in
  • a variable compressive stress profile of the first glass layer comprises a first region and a second region.
  • the compressive stress decreases in an inward direction from the exterior surface toward the interior surface.
  • the compressive stress remains substantially constant (e.g., within about 20%, within about 10%, within about 5%, or within about 2% of an average compressive stress of the second region).
  • the glass articles described herein can be used for a variety of applications including, for example, for cover glass or glass backplane applications in consumer or commercial electronic devices including, for example, LCD and LED displays, computer monitors, and automated teller machines (ATMs); for touch screen or touch sensor applications, for portable electronic devices including, for example, mobile telephones, personal media players, and tablet computers; for integrated circuit applications including, for example, semiconductor wafers; for photovoltaic applications; for architectural glass applications; for automotive or vehicular glass applications; or for commercial or household appliance applications.
  • cover glass or glass backplane applications in consumer or commercial electronic devices including, for example, LCD and LED displays, computer monitors, and automated teller machines (ATMs); for touch screen or touch sensor applications, for portable electronic devices including, for example, mobile telephones, personal media players, and tablet computers; for integrated circuit applications including, for example, semiconductor wafers; for photovoltaic applications; for architectural glass applications; for automotive or vehicular glass applications; or for commercial or household appliance applications.
  • ATMs automated teller machines
  • integrated circuit applications

Abstract

A laminated glass article includes a core layer and a clad layer directly adjacent to the core layer. The core layer is formed from a core glass composition. The clad layer is formed from a clad glass composition. An average clad coefficient of thermal expansion (CTE) is less than an average core CTE such that the clad layer is in compression and the core layer is in tension. A compressive stress of the clad layer decreases with increasing distance from an outer surface of the clad layer within an outer portion of the clad layer and remains substantially constant with increasing distance from the outer surface of the clad layer within an intermediate portion of the clad layer disposed between the outer portion and the core layer. A thickness of the intermediate portion of the clad layer is at least about 82% of a thickness of the clad layer,

Description

GLASS ARTICLE WITH DETERMINED STRESS PROFILE AND METHOD OF PRODUCING THE SAME
[0001 ] This application claims the benefit of priority to U.S. Provisional Application Number 62/060,941 filed October 7, 2014 the content of which is incorporated herein by reference in its entirety.
BACKGROUND
1 . Field
[0002] This disclosure relates generally to glass articles, and more particularly to strengthened glass articles having a determined stress profile.
2. Technical Background
[0003] Glass articles can be used in a wide variety of products including, for example, cover glass (e.g., for touch-screen devices such as smartphones, tablets, laptop computers, and monitors), auto-glazing, architectural panels, and appliances.
Relatively large flaws can be introduced into the surfaces of glass articles during use. For example, it has been observed that flaws as deep as 300 μιτι have been introduced into a cover glass of a smartphone as a result of dropping the smartphone. Thus, it would be desirable for glass articles to have a high strength performance against deep flaws to improve the mechanical reliability of the glass articles.
SUMMARY
[0004] Disclosed herein are glass articles with determined stress profiles and methods for making such glass articles.
[0005] Disclosed herein is a laminated glass article comprising a core layer and a clad layer directly adjacent to the core layer. The core layer comprises a core glass composition. The clad layer comprises a clad glass composition. An average clad coefficient of thermal expansion (CTE) of the clad glass composition is less than an average core CTE of the core glass composition such that the clad layer is in
compression and the core layer is in tension. A compressive stress of the clad layer decreases with increasing distance from an outer surface of the clad layer within an outer portion of the clad layer. The compressive stress of the clad layer remains substantially constant with increasing distance from the outer surface of the clad layer within an intermediate portion of the clad layer disposed between the outer portion of the clad layer and the core layer. A thickness of the intermediate portion of the clad layer is at least about 82% of a thickness of the clad layer,
[0006] Also disclosed herein is a glass article comprising a tensile region and a compressive region comprising an inner surface directly adjacent to the tensile region and an outer surface opposite the inner surface. An outer portion of the compressive region extends from the outer surface of the compressive region inward toward the tensile region to an outer depth of layer (DOL). An intermediate portion of the compressive region extends from the outer DOL inward toward the tensile region to an intermediate DOL. A compressive stress profile of the compressive region comprises a first compressive stress CSi and a second compressive stress CS2. A compressive stress of the outer portion is CSi at the outer surface and CS2 at the outer DOL. A compressive stress of the intermediate portion is substantially constant at CS2.
[0007] Additional features and advantages will be set forth in the detailed description which follows, and in part will be readily apparent to those skilled in the art from that description or recognized by practicing the embodiments as described herein, including the detailed description which follows, the claims, as well as the appended drawings.
[0008] It is to be understood that both the foregoing general description and the following detailed description are merely exemplary, and are intended to provide an overview or framework to understanding the nature and character of the claims. The accompanying drawings are included to provide a further understanding, and are incorporated in and constitute a part of this specification. The drawings illustrate one or more embodiment(s), and together with the description serve to explain principles and operation of the various embodiments. BRIEF DESCRIPTION OF THE DRAWINGS
[0009] FIG. 1 is a partial cross-sectional view of one exemplary embodiment of a laminate structure of a glass article.
[0010] FIG. 2 is a cross-sectional view of one exemplary embodiment of a forming apparatus that can be used to form a glass article.
[001 1 ] FIG. 3 is a graphical illustration comparing an exemplary mechanical stress profile generated by CTE mismatch alone and an exemplary chemical stress profile generated by chemical strengthening alone.
[0012] FIG. 4 is a graphical illustration of an exemplary combined stress profile formed by a combination of mechanical strengthening and chemical strengthening.
[0013] FIG. 5 is a graphical illustration comparing exemplary retained strength profiles corresponding to stress profiles generated by chemical strengthening alone and a combination of mechanical strengthening and chemical strengthening.
[0014] FIG. 6 is a graphical illustration of an exemplary stress profile formed by a combination of mechanical strengthening, chemical strengthening, and ion exchange between the compressive region and the tensile region.
DETAILED DESCRIPTION
[0015] Reference will now be made in detail to exemplary embodiments which are illustrated in the accompanying drawings. Whenever possible, the same reference numerals will be used throughout the drawings to refer to the same or like parts. The components in the drawings are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the exemplary embodiments.
[0016] As used herein, the term "average coefficient of thermal expansion," or "average CTE," refers to the average coefficient of linear thermal expansion of a given material or layer between 0 °C and 300 °C. As used herein, the term "coefficient of thermal expansion," or "CTE," refers to the average coefficient of thermal expansion unless otherwise indicated.
[0017] Chemically strengthened glass is used as a cover glass for a variety of consumer electronics devices (e.g., smartphones, tablet computers, personal computers, ultrabooks, televisions, and cameras). Breakage of such cover glass can be caused by dropping the electronic device. Without wishing to be bound by any theory, it is believed that the two predominant failure modes of cover glass that result from dropping an electronic device are flexure failure and sharp contact failure. Flexure failure is caused by the cover glass bending as a result of the dynamic load to which the electronic device is subjected upon contacting the ground or other surface onto which the electronic device is dropped. Sharp contact failure is caused by sharp indentation on the cover glass surface when the glass drops onto a rough surface (e.g., asphalt, granite, gravel, etc.), which introduces damage into the cover glass. Chemical strengthening can significantly improve resistance of the cover glass to flexure failure by creating a compressive stress on the surface of the cover glass. However the chemically strengthened cover glass may be vulnerable to dynamic sharp contact failure because of the high stress concentration caused by the local indentation at the point of contact and depth of the flaws (e.g., up to about 300 μιτι) that can be generated by such contact compared to the depth of the compressive layer (e.g., up to about 80 μιτι). If the flaw is sufficiently deep to penetrate through the compressive stress region, the cover glass may fail. Although increasing the surface compressive stress of the cover glass and/or increasing the depth of the compressive layer can increase the resistance of the cover glass to failure caused by deep flaws, both of these techniques also increase the central tension of the cover glass. If the central tension is increased above a frangibility limit, the cover glass can exhibit frangible behavior, or extreme fragmentation behavior.
[0018] In various embodiments, a glass article comprises a tensile region and a compressive region directly adjacent to the tensile region. For example, the tensile region comprises a core layer of the glass article and the compressive region comprises a cladding layer of the glass article. In some embodiments, the compressive region comprises a first compressive region and a second compressive region, and the tensile region is disposed between the first compressive region and the second compressive region. For example, the cladding layer comprises a first cladding layer and a second cladding layer, and the core layer is disposed between the first cladding layer and the second cladding layer. The glass article can be symmetrical, meaning that the first compressive region and the second compressive region (and the respective stress profiles) are mirror images of each other. Alternatively, the glass article can be asymmetrical, meaning that the first compressive region and the second compressive region are not mirror images of each other. The compressive region comprises an inner surface directly adjacent to the tensile region and an outer surface opposite the inner surface. An outer portion of the compressive region extends from the outer surface of the compressive region inward toward the tensile region to an outer depth of layer (DOL). An intermediate portion of the compressive region extends from the outer DOL inward toward the tensile region to an intermediate DOL. The compressive stress region comprises a determined compressive stress profile comprising a first
compressive stress CSi and a second compressive stress CS2 that is less than CSi . In some embodiments, CSi comprises a maximum compressive stress of the compressive region and/or CS2 comprises a minimum compressive stress of the compressive region. Additionally, or alternatively, a compressive stress of the outer portion of the
compressive region is CSi at the outer surface and CS2 at the outer DOL, and a compressive stress of the intermediate portion is substantially constant at CS2. For example, the compressive stress of the intermediate portion is within about 10%, within about 5%, within about 2%, or within about 1 % of CS2 throughout the thickness of the intermediate portion. Additionally, or alternatively, the slope of the stress profile (e.g., the slope of a linear trend line of the compressive stress as a function of depth within the glass article determined using simple linear regression) throughout the intermediate portion of the compressive region is substantially zero (e.g., between about -7 MPa/μηη and about 7 MPa/μηη, between about -5 MPa/μηη and about 5 MPa/μηη, between about -3 MPa/μηη and about 3 MPa/μηη, or between about -1 MPa/μηη and about 1 MPa/μηη). In some embodiments, the compressive stress region further comprises an inner portion extending from the intermediate DOL inward toward the tensile region to an inner DOL. The determined compressive stress profile further comprises a third compressive stress CS3 that is between CSi and CS2. In some embodiments, a compressive stress of the inner portion is CS2 or substantially equal to CS2 at the intermediate DOL and CS3 at the inner DOL.
[0019] FIG. 1 is a cross-sectional view of one exemplary embodiment of a glass article 100. In some embodiments, glass article 100 comprises a laminate sheet comprising a plurality of glass layers. The laminate sheet can be substantially planar (i.e., flat) as shown in FIG. 1 or non-planar (i.e., curved). In other embodiments, the glass article comprises a shaped glass article. For example, the laminated sheet is contacted with a forming surface of a mold to form the shaped glass article. Glass article 100 comprises a core layer 102 disposed between a first cladding layer 104 and a second cladding layer 106. In some embodiments, first cladding layer 104 and second cladding layer 106 are exterior layers as shown in FIG. 1. In other embodiments, the first cladding layer and/or the second cladding layer are intermediate layers disposed between the core layer and an exterior layer.
[0020] Core layer 102 comprises a first major surface and a second major surface opposite the first major surface. In some embodiments, first cladding layer 104 is fused to the first major surface of core layer 102. Additionally, or alternatively, second cladding layer 106 is fused to the second major surface of core layer 102. In such embodiments, the interfaces between first cladding layer 104 and core layer 102 and/or between second cladding layer 106 and core layer 102 are free of any bonding material such as, for example, a polymer interlayer, an adhesive, a coating layer, or any non-glass material added or configured to adhere the respective cladding layers to the core layer. Thus, first cladding layer 104 and/or second cladding layer 106 are fused directly to core layer 102 or are directly adjacent to core layer 102. In some
embodiments, the glass article comprises one or more intermediate layers disposed between the core layer and the first cladding layer and/or between the core layer and the second cladding layer. For example, the intermediate layers comprise intermediate glass layers and/or diffusion layers formed at the interface of the core layer and the cladding layer. The diffusion layer can comprise a blended region comprising components of each layer adjacent to the diffusion layer. In some embodiments, glass sheet 100 comprises a glass-glass laminate (e.g., an in situ fused multilayer glass-glass laminate) in which the interfaces between directly adjacent glass layers are glass-glass interfaces.
[0021] In some embodiments, core layer 102 comprises a core glass composition, and first and/or second cladding layers 104 and 106 comprise a clad glass composition that is different than the core glass composition. The core glass composition and the clad glass composition are different from each other prior to chemically strengthening the glass article as described herein. For example, in the embodiment shown in FIG. 1 , core layer 102 comprises the core glass composition, and each of first cladding layer 104 and second cladding layer 106 comprises the clad glass composition. In other embodiments, the first cladding layer comprises a first clad glass composition, and the second cladding layer comprises a second clad glass composition that is different than the core glass composition and/or the first clad glass composition.
[0022] The glass article can be formed using a suitable process such as, for example, a fusion draw, down draw, slot draw, up draw, or float process. In some embodiments, the glass article is formed using a fusion draw process. FIG. 2 is a cross-sectional view of one exemplary embodiment of an overflow distributor 200 that can be used to form a glass article such as, for example, glass article 100. Overflow distributor 200 can be configured as described in U.S. Patent No. 4,214,886, which is incorporated herein by reference in its entirety. For example, overflow distributor 200 comprises a lower overflow distributor 220 and an upper overflow distributor 240 positioned above the lower overflow distributor. Lower overflow distributor 220 comprises a trough 222. A core glass composition 224 is melted and fed into trough 222 in a viscous state. Core glass composition 224 forms core layer 102 of glass article 100 as further described below. Upper overflow distributor 240 comprises a trough 242. A clad glass
composition 244 is melted and fed into trough 242 in a viscous state. Clad glass composition 244 forms first and second cladding layers 104 and 106 of glass article 100 as further described below.
[0023] Core glass composition 224 overflows trough 222 and flows down opposing outer forming surfaces 226 and 228 of lower overflow distributor 220. Outer forming surfaces 226 and 228 converge at a draw line 230. The separate streams of core glass composition 224 flowing down respective outer forming surfaces 226 and 228 of lower overflow distributor 220 converge at draw line 230 where they are fused together to form core layer 102 of glass article 100.
[0024] Clad glass composition 244 overflows trough 242 and flows down opposing outer forming surfaces 246 and 248 of upper overflow distributor 240. Clad glass composition 244 is deflected outward by upper overflow distributor 240 such that the clad glass composition flows around lower overflow distributor 220 and contacts core glass composition 224 flowing over outer forming surfaces 226 and 228 of the lower overflow distributor. The separate streams of clad glass composition 244 are fused to the respective separate streams of core glass composition 224 flowing down respective outer forming surfaces 226 and 228 of lower overflow distributor 220. Upon
convergence of the streams of core glass composition 224 at draw line 230, clad glass composition 244 forms first and second cladding layers 104 and 106 of glass article 100.
[0025] In some embodiments, core glass composition 224 of core layer 102 in the viscous state is contacted with clad glass composition 244 of first and second cladding layers 104 and 106 in the viscous state to form the laminated sheet. In some of such embodiments, the laminated sheet is part of a glass ribbon traveling away from draw line 230 of lower overflow distributor 220 as shown in FIG. 2. The glass ribbon can be drawn away from lower overflow distributor 220 by a suitable means including, for example, gravity and/or pulling rollers. The glass ribbon cools as it travels away from lower overflow distributor 220. The glass ribbon is severed to separate the laminated sheet therefrom. Thus, the laminated sheet is cut from the glass ribbon. The glass ribbon can be severed using a suitable technique such as, for example, scoring, bending, thermally shocking, and/or laser cutting. In some embodiments, glass article 100 comprises the laminated sheet as shown in FIG. 1. In other embodiments, the laminated sheet can be processed further (e.g., by cutting or molding) to form glass article 100.
[0026] Although glass article 100 shown in FIG. 1 comprises three layers, other embodiments are included in this disclosure. In other embodiments, a glass article can have a determined number of layers, such as two, four, or more layers. For example, a glass article comprising two layers can be formed using two overflow distributors positioned so that the two layers are joined while traveling away from the respective draw lines of the overflow distributors or using a single overflow distributor with a divided trough so that two glass compositions flow over opposing outer forming surfaces of the overflow distributor and converge at the draw line of the overflow distributor. A glass article comprising four or more layers can be formed using additional overflow distributors and/or using overflow distributors with divided troughs. Thus, a glass article having a determined number of layers can be formed by modifying the overflow distributor accordingly.
[0027] In some embodiments, glass article 100 comprises a thickness of at least about 0.05 mm, at least about 0.1 mm, at least about 0.2 mm, or at least about 0.3 mm. Additionally, or alternatively, glass article 100 comprises a thickness of at most about 3 mm, at most about 2 mm, at most about 1 .5 mm, at most about 1 mm, at most about 0.7 mm, or at most about 0.5 mm. For example, glass article comprises a thickness of from about 0.1 mm to about 3 mm, from about 0.1 mm to about 1 mm, or from about 0.3 mm to about 0.7 mm. In some embodiments, a ratio of a thickness of core layer 102 to a thickness of glass article 100 is at least about 0.5, at least about 0.7, at least about 0.8, at least about 0.85, at least about 0.9, or at least about 0.95. In some
embodiments, a thickness of the second layer (e.g., each of first cladding layer 104 and second cladding layer 106) is from about 0.01 mm to about 0.3 mm.
[0028] In some embodiments, glass article 100 is mechanically strengthened. For example, the clad glass composition of first and/or second cladding layers 104 and 106 comprises a different average coefficient of thermal expansion (CTE) than the core glass composition of core layer 102. In some embodiments, first and second cladding layers 104 and 106 are formed from a glass composition having a lower average CTE than core layer 102. The CTE mismatch (i.e., the difference between the average CTE of first and second cladding layers 104 and 106 and the average CTE of core layer 102) results in formation of compressive stress in the cladding layers and tensile stress in the core layer upon cooling of glass article 100.
[0029] In some embodiments, the average CTE of core layer 102 and the average CTE of first and/or second cladding layers 104 and 106 differ by at least about
5x10"7oC"1, at least about 15x10"7oC"1, at least about 25x10"7oC"1, or at least about 30x10"7oC"1. Additionally, or alternatively, the average CTE of core layer 102 and the average CTE of first and/or second cladding layers 104 and 106 differ by at most about 100x10"7oC"1, at most about 75x10"7oC"1, at most about 50x10"7oC"1, at most about 40x10"7oC"1, at most about 30x10"7oC"1, at most about 20x10"7oC"1, or at most about 10x10"7oC"1. In some embodiments, the clad glass composition comprises an average CTE of at most about 66x10"7oC"1, at most about 55x10"7oC"1, at most about 50x10"7oC"1, at most about 40x10"7oC"1, or at most about 35x10"7oC"1. Additionally, or alternatively, the clad glass composition comprises an average CTE of at least about 10x10"7oC"1, at least about 15x10"7oC"1, at least about 25x10"7oC"1, or at least about 30x10"7oC"1.
Additionally, or alternatively, the core glass composition comprises an average CTE of at least about 40x10"7oC"1, at least about 50x10"7oC"1, at least about 55x10"7oC"1, at least about 65x10"7oC"1, at least about 70x10"7oC"1, at least about 80x10"7oC"1, or at least about 90x10"7oC"1. Additionally, or alternatively, the core glass composition comprises an average CTE of at most about 120x10"7oC"1, at most about 1 10x10"7oC"1, at most about 100x10"7oC"1, at most about 90x10"7oC"1 , at most about 75x10"7oC"1, or at most about 70x10"7oC"1.
[0030] In some embodiments, glass article 100 is chemically strengthened. For example, glass article 100 is strengthened using an ion exchange treatment to increase the compressive stress in a region of the glass article near an outer surface of the glass article (e.g., an outer portion of the compressive region as described herein). In some embodiments, the ion exchange treatment comprises applying an ion exchange medium to one or more surfaces of glass article 100. The ion exchange medium comprises a solution, a paste, a gel, or another suitable medium comprising larger ions to be exchanged with smaller ions in the glass matrix. For example, the compressive layer of glass article 100 comprises an alkali aluminosilicate glass. Thus, the smaller ions in the surface layer of the glass and the larger ions in the ion exchange medium are
monovalent alkali metal cations (e.g., Li+, Na+, K+, Rb+, and/or Cs+). Alternatively, monovalent cations in glass article 100 may be replaced with monovalent cations other than alkali metal cations (e.g., Ag+ or the like). In some embodiments, the ion exchange medium comprises a molten salt solution, and the ion exchange treatment comprises immersing the laminated glass article in a molten salt bath comprising larger ions (e.g., K+ and/or Na+) to be exchanged with smaller ions (e.g., Na+ and/or Li+) in the glass matrix. In some embodiments, the molten salt bath comprises a salt (e.g., a nitrate, a sulfate, and/or a chloride) of the larger alkali metal ion. For example, the molten salt bath comprises molten KNO3, molten NaNO3, or a combination thereof. Additionally, or alternatively, the temperature of the molten salt bath is from about 380°C to about 450°C, and an immersion time is from about 2 hours to about 16 hours. By replacing smaller ions in the glass matrix with larger ions at the surface of glass article 100, the compressive stress of the compressive layer is increased near the outer surface of the glass article.
[0031] FIG. 3 is a graphical illustration comparing an exemplary mechanical stress profile 302 generated by CTE mismatch alone and an exemplary chemical stress profile 304 generated by chemical strengthening alone. The stress profiles are represented by the stress as a function of depth within the glass article. The depth within the glass article, given as the distance from an outer surface of the glass article, is plotted on the x-axis, and the stress is plotted on the y-axis.
[0032] Referring to mechanical stress profile 302, the compressive region (e.g., the clad layer) has a thickness of about 50 μιτι and a first compressive stress of about 150 MPa. Mechanical stress profile 302 is a step function. Thus, the compressive stress is substantially constant at the surface compressive stress throughout the compressive region, and the stress transitions from the surface compressive stress to the maximum tensile stress as a step change at the interface between the compressive region and the tensile region (e.g., at the interface between the clad layer and the core layer).
[0033] Referring to chemical stress profile 304, the compressive region extends to a DOL of about 80 μιτι and has a surface compressive stress of about 900 MPa. The stress transitions continuously from the surface compressive stress at the outer surface of the compressive region to the maximum tensile stress within the tensile region.
Thus, in contrast to mechanical stress profile 302, chemical stress profile 304 does not have a region of constant compressive stress or a step change between the
compressive stress region and the tensile region.
[0034] In some embodiments, glass article 100 is strengthened by a combination of mechanical strengthening and chemical strengthening. For example, glass article 100 comprising a CTE mismatch as described herein (e.g., a glass laminate) is chemically strengthened to further increase the compressive stress near the outer surface of the compressive layer. FIG. 4 is a graphical illustration of an exemplary combined stress profile formed by a combination of mechanical strengthening and chemical strengthening. The stress profile of a glass article can be measured using any suitable technique including, for example, using a birefringence based measurement technique or a refracted near-field (RNF) technique. Exemplary standards for stress
measurement include, for example, ASTM C1422 and ASTM C1279. The stress profile comprises the stress in glass article 100 as a function of depth within the glass article. The depth within glass article 100, given as the distance from an outer surface of the glass article, is plotted on the x-axis, and the stress is plotted on the y-axis. The depth within the glass article may be referred to herein as depth of layer (DOL). Compressive stress is shown on the positive y-axis, and tensile stress is shown on the negative y-axis. However, the values of compressive and tensile stresses described herein refer to the absolute values of the stresses. Thus, tensile stresses are given herein as positive values as opposed to negative values. It will be recognized that FIG. 4
illustrates only a portion of the stress profile of glass article 100 through a portion of the thickness of the glass article (e.g., through one clad layer and a portion of the core layer). For a symmetrical glass article, the stress profile through the remaining portion of the thickness of the glass article is a mirror image of illustrated portion of the stress profile shown in FIG. 4. In the example shown in FIG. 4, the compressive region (e.g., the clad layer) has a thickness of about 125 μιτι, a first compressive stress of about 900 MPa, and a second compressive stress of about 100 MPa. The compressive stress region comprises an outer portion extending from the outer surface of the compressive region inward toward the tensile region to an outer DOL, and an intermediate portion extending from the outer DOL inward toward the tensile region to an intermediate DOL. In some embodiments, the outer portion of the compressive region comprises a surface ion exchanged region in which the glass composition profile and/or stress profile are generated, at least in part, by diffusion of larger ions into the glass matrix and smaller ions out of the glass matrix within the ion exchanged region (e.g., by subjecting the laminated glass article to the ion exchange treatment as described herein). For example, the surface ion exchanged region can be identified as having a stress profile with a particular shape indicating that it was generated at least partially by an ion exchange treatment (e.g., an error function). Additionally, or alternatively, the surface ion exchanged region can be identified as a region at the surface of the glass article in which compressive stress decreases as a function of depth within the glass article, compared to the substantially constant compressive stress within the intermediate portion of the compressive region. In the example shown in FIG. 4, the outer DOL is about 10 μιτι, and the intermediate DOL is about 125 μιτι. Thus, the thickness of the outer portion of the compressive region (represented by the outer DOL) is about 8% of the thickness of the compressive region or the clad layer, and the thickness of the intermediate portion of the compressive region is about 92% of the thickness of the compressive region or the clad layer. In some embodiments, the thickness of the outer portion of the compressive region is at most about 18%, at most about 16%, at most about 14%, at most about 12%, at most about 10%, at most about 8%, at most about 6%, at most about 4%, or at most about 2% of the thickness of the compressive region. Additionally, or alternatively, the thickness of the outer portion of the compressive region is at least about .1 %, at least about 0.5%, or at least about 1 % of the thickness of the compressive region. In some embodiments, the thickness of the intermediate portion of the compressive region is at least about 82%, at least about 84%, at least about 86%, at least about 88%, at least about 90%, at least about 92%, at least about 94%, at least about 96%, or at least about 98% of the thickness of the compressive region.
Additionally, or alternatively, the thickness of the intermediate portion of the
compressive region is at most about 99.9%, at most about 99.5%, or at most about 99% of the thickness of the compressive region. Restricting the thickness of the outer portion of the compressive region, or increasing the thickness of the intermediate portion of the compressive region, can enable a combination of improved retained strength and relatively low tensile stress within the glass article as described herein (e.g., by providing relatively high surface compressive stress, relatively thick
compressive stress region or deep total DOL, and relatively low area under the compressive stress profile curve).
[0035] In the example shown in FIG. 4, the compressive stress decreases rapidly and continuously from the first compressive stress at the outer surface of the compressive region to the second compressive stress at the outer DOL, remains substantially constant at the second compressive stress from the outer DOL to the inner DOL, and then transitions from the second compressive stress to the maximum tensile stress as a step change at the interface between the compressive region and the tensile region. In the embodiment shown in FIG. 4, the intermediate DOL is equal to the thickness of the clad layer. In other embodiments, the intermediate DOL is less than the thickness of the clad layer.
[0036] In some embodiments, glass article 100 is chemically strengthened to increase the compressive stress in the outer portion of the clad layer without increasing the compressive stress in the intermediate portion of the clad layer. Thus, the chemical strengthening is performed in such a manner that less than an entire thickness of the compressive layer is chemically strengthened and the compressive layer comprises the intermediate portion with the substantially constant compressive stress, as described herein, after chemical strengthening. For example, the time over which chemical strengthening is performed and/or the temperature at which chemical strengthening is performed can be limited to limit the depth of the ion exchanged region.
[0037] The retained strength of a glass article can be determined based on the stress profile of the glass article. For example, the retained strength is determined by forming a flaw extending from a surface of the glass article to a specified depth and then determining the strength of the glass article after formation of the flaw. The strength is the flexural strength of the glass article determined using, for example, a ring-on-ring test method (e.g., as described in ASTM C1499-09), a ball-on-ring test method, a three-point bend test method, a four-point bend test method, or another suitable method or technique. Such a retained strength determination can be conducted using a fracture mechanics simulation based on the stress profile of the glass article. FIG. 5 is a graphical illustration comparing exemplary retained strength profiles corresponding to stress profiles generated by chemical strengthening alone and a combination of mechanical strengthening and chemical strengthening. The retained strength profiles are represented by the retained strength as a function flaw size. The flaw size, given as the distance from an outer surface of the glass article to which the flaw extends, is plotted on the x-axis, and the retained strength is plotted on the y-axis. Chemical retained strength profile 504 was generated using a fracture mechanics simulation based on chemical stress profile 304 shown in FIG. 3, and combined retained strength profile 506 was generated using a fracture mechanics simulation based on the combined stress profile shown in FIG. 4.
[0038] As shown in FIG. 5, each of chemical retained strength profile 504 and combined retained strength profile 506 comprises a relatively high retained strength (e.g., at least about 200 MPa) near the outer surface of the glass article, which can aid in avoiding breakage of the glass article as a result of relatively shallow flaws (e.g., less than about 10 μιτι). However, combined retained strength profile 506 maintains a higher retained strength than chemical retained strength profile 504 deeper into the glass article. For example, the retained strength of combined retained strength profile 506 is higher than that of chemical retained strength profile 504 for flaw sizes from about 70 μιτι to about 300 μιτι, which can aid in avoiding breakage of the glass article as a result of relatively deep flaws. Flaws introduced into a cover glass as a result of dropping an electronic device (e.g., a smartphone) generally have flaw sizes from about 70 μιτι to about 300 μιτι. Thus, improved resistance to breakage resulting from such flaw sizes translates into improved drop performance for a cover glass comprising a retained strength profile similar to combined retained strength profile 506 as compared to retained strength profile 504. Moreover, the improved resistance to breakage resulting from large flaws can be achieved by combined retained strength profile 506 without substantially increasing the maximum tensile stress of the tensile region as compared to retained strength profile 504. For example, maintaining the compressive stress at a relatively constant level relatively deep into the compressive region (e.g., over the intermediate portion) can help to maintain the area under the compressive portion of the stress profile curve, which is proportional to the maximum tensile stress in the tensile region, relatively low while also providing protection against breakage caused by relatively deep flaws. Thus, the maximum tensile stress can be maintained below the frangibility limit. Additionally, or alternatively, the distance between the outer DOL and the intermediate DOL (i.e., the thickness of the intermediate portion of the compressive region) is sufficiently large to maintain relatively high compressive stress deep into the glass article (e.g., to achieve improved resistance to breakage resulting from large flaws) without increasing the maximum tensile stress to an unacceptable level (e.g., above the frangibility limit). [0039] In some embodiments, the glass article is strengthened by ion exchange between the compressive region and the tensile region to form an inner portion of the compressive region adjacent to the tensile region and having an increased compressive stress relative to the intermediate portion of the compressive region. For example, glass article 100 is strengthened by ion exchange between first clad layer 104 and/or second clad layer 106 and core layer 102. In some embodiments, the inner portion of the compressive region comprises an interface ion exchanged region in which the glass composition profile and/or stress profile are generated, at least in part, by diffusion of larger ions into the glass matrix and smaller ions out of the glass matrix within the interface ion exchanged region (e.g., by ion exchange between the clad layer and the core layer at the interface therebetween as described herein). For example, the interface ion exchanged region can be identified as having a stress profile with a particular shape indicating that it was generated at least partially by ion exchange (e.g., an error function). Additionally, or alternatively, the interface ion exchanged region can be identified as a region at the interface between the compressive region and the tensile region in which compressive stress increases as a function of depth within the glass article, compared to the substantially constant compressive stress within the
intermediate portion of the compressive region.
[0040] In some embodiments, first clad layer 104 and/or second clad layer 106 comprise a relatively low CTE, ion-exchangeable glass composition, and core layer 102 comprises a relatively high CTE, ion exchangeable glass composition. Suitable glass compositions can include those described in U.S. Patent Application Pub. No.
2014/0141217, which is incorporated herein by reference in its entirety. Examples of such glass compositions are shown in Table 1 in which 1X410-8 stands for ion exchanged at 410°C for 8 hours, CS stands for compressive stress, and DOL stands for depth of layer. In some embodiments, the core glass comprises a sufficiently high CTE for mechanical strengthening of the glass article and a sufficient K2O concentration for interfacial ion-exchange. Table 1 : Exemplary Low CTE Ion-Exchangeable Clad Glass Compositions
Figure imgf000018_0001
Table 1 : Exemplary Low CTE Ion-Exchangeable Clad Glass Compositions (continued)
Figure imgf000018_0002
Table 1 : Exemplary Low CTE Ion-Exchangeable Clad Glass Compositions (continued)
Figure imgf000019_0001
[0041] Exemplary glass compositions that can be used as core glass compositions and various properties of the glass compositions are shown in Table 2. In some embodiments, the core glass comprises large radius, mobile cations (e.g., K+ and/or Cs+) capable of exchanging with small radius, mobile cations (e.g., Na+ and/or Li+) in the clad glass. When heat is applied to glass article 100 (e.g., during forming of the glass article), the larger ions in the core glass exchange with the smaller ions in the clad glass. In some embodiments, heating glass article 100 during lamination is sufficient to cause the ion exchange between the clad layers and the core layer without any additional or subsequent ion exchange heat treatment. The ion exchange between the core layer and the clad layers increases the compressive stress in the inner portion of the compressive region extending from the intermediate DOL inward toward the tensile region to an inner DOL. Table 2: Exemplary Core Glass Compositions
Figure imgf000020_0001
Liquidus Viscosity 1.17x10
893k 9
(Poise)
Table 2: Exemplary Core Glass Compositions (continued)
Figure imgf000021_0001
(°C) >875°C
Potass iu
Primary Devit unknow Potash m
Phase n feldspar dislicate
T200 Poise (°C) 1510.9 1547.7 1565.4 1611.3 1552.4 1622.9
T35 kPoise (°C) 1088.6 1095.3 1109.6 1135.1 1096.4 1142.2
Liquidus Viscosity 7.42x10 1.15x10 9.08x10 1.55x10
1.74x106 2.9x108 8 8 6 6 (Poise)
Table 2: Exemplary Core Glass Compositions (continued)
Figure imgf000022_0001
CTE (x10"7°C) 109 59.9 66 62.7 56.2 57.3 58 58.3
Density (g/cmJ) 2.577 2.486 2.526 2.501 2.478 2.479 2.479 2.467
24h air liquidus
<780
(°C)
24h internal
<780
liquidus (°C)
24h Pt liquidus
<780
(°C)
Primary Devit
none
Phase
T200 Poise (°C) 1630 1555 1596 1626.8 1640.6 1619.4 1623.2
T35 kPoise (°C) 1188 1139 1175 1188.3 1191.4 1185.3 1186.1
Liquidus Viscosity
356K 278k
(Poise)
Table 2: Exemplary Core Glass Compositions (continued)
Figure imgf000023_0001
Properties
Anneal point (°C) 660.1 658.5 658.8 660.3 657.5 658 660.6 660.4
Strain point (°C) 609.4 607.8 610.1 609.4 607.7 609.1 610.5 610
Softening point
898.4 892.5 887.3 896.4 891.8 900.4 899.3 898.5 (°C)
CTE (x10"7°C) 58.2 58.2 58.2 58.7 59.5 59.3 59 59.2
Density (g/cmJ) 2.467 2.466 2.464 2.465 2.466 2.466 2.469 2.469
Primary Devit
Phase
T200 Poise (°C) 1632.6 1621.6 1640.7 1613.9 1637.0 1652.4 1653.2 1639.3
T35 kPoise (°C) 1 191.3 1 184.5 1 191.3 1 182.6 1 190.9 1 197.0 1201.0 1 194.0
Liquidus Viscosity
(Poise)
Table 2: Exemplary Core Glass Compositions (continued)
Figure imgf000024_0001
Properties
Anneal point (°C) 661.2 663.2 658.7 658.6 657.7 655.8 658.4 654.2
Strain point (°C) 61 1.3 612.4 610.6 608.4 608.4 607.2 608.6 605.9
Softening point
904 904.3 896.1 877.6 875.3 875.1 873.8 870.4 (°C)
CTE (x10"7°C) 58.7 60.2 61.2 62.5 62.4 62.7 62.2
Density (g/cmJ) 2.47 2.469 2.482 2.496 2.501 2.503 2.504 2.505
Primary Devit Potash
Phase Feldspar
T200 Poise (°C) 1650.7 1638.3 1605.3 1562.1 1553.7 1545.7 1537.3 1528.9
T35 kPoise (°C) 1 198.5 1 195.7 1 174.7 1 156.0 1 150.7 1 144.2 1 143.8 1 136.6
Liquidus Viscosity
1251
(Poise)
Table 2: Exemplary Core Glass Compositions (continued)
Figure imgf000025_0001
Properties
Anneal point (°C) 655.2 657.2 653.6 661.6 667.3 662.7 656.6 646.4
Strain point (°C) 607.5 608.5 606.5 608.2 610.5 607.4 602.6 596.8
Softening point
864.1 870.5 873 874.2 886 888.2 870.8 862 (°C)
CTE (x10"7°C) 62.2 62.4 62.3 64.8 66.2 67.8 69.2 68.5
Density (g/cmJ) 2.505 2.507 2.505 2.489 2.48 2.477 2.476
Potash
Primary Devit
Feldspa
Phase
r
T200 Poise (°C) 1540.9 1523.4 1574.7 1551.5 1546.4 1569.4 1570.8 1575.7
T35 kPoise (°C) 1 140.6 1 136.1 1 155.8 1 153.6 1 156.0 1 162.4 1 160.0 1 154.4
Liquidus Viscosity
256
(Poise)
Table 2: Exemplary Core Glass Compositions (continued)
Figure imgf000026_0001
Properties
Anneal point (°C) 638.4 640.2 638.9 637.8 639.3 638 636.8 635.6
Strain point (°C) 592 592.3 590.6 591.4 592 589.5 589.7 587.8
Softening point
860.5 857.4 854.9 857.9 853.6 858.8 856.4 854.8 (°C)
CTE (x10"7°C) 69.4 69.8 69.7 69.7 70 70.4 70.7 71.4
Density (g/cmJ) 2.475 2.477 2.477 2.477 2.478 2.478 2.482 2.485
Primary Devit
Phase
T200 Poise (°C) 1594.1 1581.1 1580.9 1590.9 1579.2 1586.6 1586.9 1573.7
T35 kPoise (°C) 1 156.2 1 153.1 1 151.8 1 154.0 1 151.3 1 154.3 1 151.8 1 147.1
Liquidus Viscosity
256
(Poise)
Table 2: Exemplary Core Glass Compositions (continued)
Figure imgf000027_0001
Properties
Anneal point (°C) 633.9 628.5 627.7 625.7 623.6 624.4 623.5 621.6
Strain point (°C) 586.4 582.3 580.7 579 577.4 577.1 576.3 575.1
Softening point
847.6 844 836.1 834.7 840 830.6 831.2 833.9 (°C)
CTE (x10"7°C) 73.3 76.5 78.1 80.2 78.8 80.2 80.5 80.2
Density (g/cmJ) 2.492 2.5 2.504 2.51 2.511 2.511 2.512 2.513
Unknow n
Primary Devit
Feldspar Phase
T200 Poise (°C) 1573.5 1546.1 1544.9 1545.3 1550.1 1530.4 1544.4 1537.1
T35 kPoise (°C) 1145.2 1127.4 1128.0 1126.6 1126.5 1119.1 1124.8 1118.9
544
Liquidus Viscosity
(Poise)
[0042] In some embodiments, the clad glass comprises an ion-exchangeable glass with a sufficiently low CTE for mechanical strengthening of the glass article. For example, in one exemplary embodiment, the clad glass comprises about 65 mol.% to about 70 mol.% SiO2; about 9 mol.% to about 14 mol.% AI2O3; and about 0 mol.% to about 1 1 mol.% B2O3 as glass network formers; about 5 mol.% to about 10 mol.% alkali oxide R2O, wherein R is at least one of Li, Na, and K; and about 3 mol.% to about 1 1 mol.% of divalent oxide MO, wherein M is at least one of Mg, Ca, Ba, and Zn. Such glass compositions generally have an average CTE that is less than or equal to 55x10"7/°C and are amenable to strengthening by ion-exchange.
[0043] In another exemplary embodiment, the clad glass comprises about 65 mol.% to about 68 mol.% SiO2; about 10 mol.% to about 13 mol.% AI2O3; and about 6 mol.% to about 9 mol.% B2O3 as glass network formers; about 6 mol.% to about 9 mol.% alkali oxide R2O, wherein R is at least one of Li, Na, and K; and about 7 mol.% to about 10 mol.% of divalent oxide MO, wherein M is at least one of Mg, Ca, Ba, and Zn. Such glass compositions generally have an average CTE that is less than or equal to 55x10"7/°C and are amenable to strengthening by ion-exchange.
[0044] FIG. 6 is a graphical illustration of an exemplary stress profile formed by a combination of mechanical strengthening, chemical strengthening, and ion exchange between the compressive region and the tensile region. In the example shown in
FIG. 6, the compressive region has a thickness of about 125 μιτι, a first compressive stress of about 600 MPa, a second compressive stress of about 100 MPa, and a third compressive stress of about 300 MPa. The compressive stress region comprises an outer portion (e.g., a surface ion exchanged region) extending from the outer surface of the compressive region inward toward the tensile region to an outer DOL, an
intermediate portion extending from the outer DOL inward toward the tensile region to an intermediate DOL, and an inner portion (e.g., an interface ion exchanged region) extending from the intermediate DOL inward toward the tensile region to an inner DOL. In the example shown in FIG. 6, the outer DOL is about 10 μιτι, the intermediate DOL is about 1 15 μιτι, and the inner DOL is about 125 μιτι. Thus, the compressive stress decreases rapidly and continuously from the first compressive stress at the outer surface of the compressive region to the second compressive stress at the outer DOL, remains substantially constant at the second compressive stress from the outer DOL to the intermediate DOL, increases rapidly and continuously from the second compressive stress at the intermediate DOL to the third compressive stress at the inner DOL, and then transitions from the third compressive stress to the maximum tensile stress as a step change at the interface between the compressive region and the tensile region. The increased compressive stress of the inner portion of the compressive region can further increase the resistance of the glass article to breakage caused by deep flaws without increasing the maximum tension of the tensile region sufficiently to cause the glass article to display frangible behavior.
[0045] In some embodiments, CSi is at least about 400 MPa, at least about 500 MPa, at least about 600 MPa, at least about 700 MPa, at least about 800 MPa, or at least about 900 MPa. Additionally, or alternatively, CSi is at most about 1000 MPa or at most about 900 MPa. For example, CSi is from about 400 MPa to about 1000 MPa. [0046] In some embodiments, CS2 is at least about 50 MPa, at least about 100 MPa, at least about 200 MPa, or at least about 300 MPa. Additionally, or alternatively, CS2 is at most about 450 MPa, at most about 400 MPa, at most about 300 MPa, or at most about 200 MPa. For example, CS2 is from about 50 MPa to about 450 MPa.
[0047] In some embodiments, CS3 is at least about 100 MPa, at least about 200 MPa, at least about 300 MPa, or at least about 400 MPa. Additionally, or alternatively, CS3 is at most about 800 MPa, at most about 700 MPa, or at most about 600 MPa. For example, CS3 is from about 100 MPa to about 800 MPa.
[0048] In some embodiments, the outer DOL is at least about 10 μιτι, at least about 20 μιτι, at least about 30 μιτι, or at least about 40 μιτι. Additionally, or alternatively, the outer DOL is at most about 50 μιτι, at most about 40 μιτι, or at most about 30 μιτι. For example, the outer DOL is from about 10 μιτι to about 50 μιτι.
[0049] In some embodiments, the intermediate DOL is at least about 30 μιτι, at least about 50 μιτι, at least about 70 μιτι, or at least about 90 μιτι. Additionally, or
alternatively, the intermediate DOL is at most about 250 μιτι, at most about 200 μιτι, at most about 170 μιτι, at most about 150 μιτι, at most about 130 μιτι, at most about 120 μιτι, at most about 100 μιτι, at most about 80 μιτι, or at most about 60 μιτι. For example, intermediate DOL is from about 30 μιτι to about 250 μιτι.
[0050] In some embodiments, the inner DOL corresponds to the interface between the compressive region and the tensile region. For example, the inner DOL is equal to or substantially equal to the thickness of the respective clad layer of the glass article.
[0051] In some embodiments, the glass article comprises a laminated glass composite comprising a first glass layer and a second glass layer. The first glass layer comprises a first glass composition, and the second glass layer comprises a second glass composition that is different than the first glass composition. The first glass layer comprises an exterior surface and an interior surface. The second glass layer directly contacts the interior surface of the first glass layer. The first glass layer is in
compression, and the second glass layer is in tension. A variable compressive stress profile of the first glass layer comprises a first region and a second region. In the first region, the compressive stress decreases in an inward direction from the exterior surface toward the interior surface. In the second region, the compressive stress remains substantially constant (e.g., within about 20%, within about 10%, within about 5%, or within about 2% of an average compressive stress of the second region).
[0052] The glass articles described herein can be used for a variety of applications including, for example, for cover glass or glass backplane applications in consumer or commercial electronic devices including, for example, LCD and LED displays, computer monitors, and automated teller machines (ATMs); for touch screen or touch sensor applications, for portable electronic devices including, for example, mobile telephones, personal media players, and tablet computers; for integrated circuit applications including, for example, semiconductor wafers; for photovoltaic applications; for architectural glass applications; for automotive or vehicular glass applications; or for commercial or household appliance applications.
[0053] It will be apparent to those skilled in the art that various modifications and variations can be made without departing from the spirit or scope of the invention.
Accordingly, the invention is not to be restricted except in light of the attached claims and their equivalents.

Claims

What is claimed is:
1 . A laminated glass article comprising:
a core layer comprising a core glass composition; and
a clad layer directly adjacent to the core layer and comprising a clad glass composition, an average clad coefficient of thermal expansion (CTE) of the clad glass composition less than an average core CTE of the core glass composition such that the clad layer is in compression and the core layer is in tension;
wherein a compressive stress of the clad layer decreases with increasing distance from an outer surface of the clad layer within an outer portion of the clad layer; and
wherein the compressive stress of the clad layer remains substantially constant with increasing distance from the outer surface of the clad layer within an intermediate portion of the clad layer disposed between the outer portion of the clad layer and the core layer, and a thickness of the intermediate portion of the clad layer is at least about 82% of a thickness of the clad layer,
2. The laminated glass article of claim 1 , wherein the outer portion of the clad layer comprises a surface ion exchanged region of the clad layer.
3. The laminated glass article of claim 1 or claim 2, wherein a stress profile of the clad layer within the outer portion of the clad layer comprises an error function.
4. The laminated glass article of any of claims 1 to 3, wherein the thickness of the intermediate portion of the clad layer is at most about 99.9% of a thickness of the clad layer,
5. The glass article of any of claims 1 to 4, wherein the compressive stress of the clad layer at the outer surface of the clad layer is from about 400 MPa to about
1000 MPa.
6. The glass article of any of claims 1 to 5, wherein the compressive stress of the clad layer within the intermediate portion of the clad layer is from about 50 MPa to about 450 MPa.
7. The glass article of any of claims 1 to 6, wherein a thickness of the outer portion of the clad layer is from about 10 m to about 50 μιτι.
8. The glass article of any of claims 1 to 7, wherein a thickness of the intermediate portion of the clad layer is from about 1 μιτι to about 240 μιτι.
9. The glass article of any of claims 1 to 8, wherein the compressive stress of the clad layer increases with increasing distance from the outer surface of the clad layer within an inner portion of the clad layer disposed between the intermediate portion of the clad layer and the core layer.
10. The laminated glass article of claim 9, wherein the inner portion of the clad layer comprises an interface ion exchanged region of the clad layer.
1 1 . The laminated glass article of claim 9 or claim 10, wherein a stress profile of the clad layer within the inner portion of the clad layer comprises an error function.
12. The glass article of any of claims 1 to 1 1 , wherein the average core CTE is at least about 10"7/°C higher than the average clad CTE.
13. The glass article of any of claims 1 to 12, wherein the clad layer comprises a first clad layer and a second clad layer, and the core layer is disposed between the first clad layer and the second clad layer.
14. A glass article comprising:
a tensile region; and a compressive region comprising an inner surface directly adjacent to the tensile region and an outer surface opposite the inner surface, an outer portion of the compressive region extending from the outer surface of the compressive region inward toward the tensile region to an outer depth of layer (DOL), an intermediate portion of the compressive region extending from the outer DOL inward toward the tensile region to an intermediate DOL;
wherein a compressive stress profile of the compressive region comprises a first compressive stress CSi and a second compressive stress CS2 that is less than CSi, a compressive stress of the outer portion is CSi at the outer surface and CS2 at the outer DOL, and a compressive stress of the intermediate portion is substantially constant at CS2; and
wherein the outer DOL is at most about 18% of a thickness of the compressive region.
15. The glass article of claim 14, wherein the outer portion of the compressive region comprises a surface ion exchanged region.
16. The glass article of claim 14 or claim 15, wherein the compressive stress profile of the compressive region within the outer portion of the compressive region comprises an error function.
17. The laminated glass article of any of claims 14 to 16, wherein a distance between the outer DOL and the intermediate DOL is at least about 82% of a thickness of the compressive region,
18. The glass article of any of claims 14 to 17, wherein the compressive stress of the outer portion decreases continuously from CSi at the outer surface to CS2 at the outer DOL.
19. The glass article of any of claims 14 to 18, wherein CSi is from about 400 MPa to about 1000 MPa.
20. The glass article of any of claims 14 to 19, wherein CS2 is from about 50 MPa to about 450 MPa.
21 . The glass article of any of claims 14 to 20, wherein the outer DOL is from about 10 m to about 50 μιτι.
22. The glass article of any of claims 14 to 21 , wherein the intermediate DOL is from about 30 μιτι to about 250 μιτι.
23. The glass article of any of claims 14 to 22, further comprising an inner portion of the compressive region extending from the intermediate DOL inward toward the tensile region to an inner DOL;
wherein the compressive stress profile of the compressive region comprises a third compressive stress CS3 that is between CS2 and CSi, and a compressive stress of the inner portion is CS2 at the intermediate DOL and CS3 at the inner DOL.
24. The glass article of claim 23, wherein the inner portion of the compressive region comprises an interface ion exchanged region.
25. The glass article of claim 23 or claim 24, wherein the compressive stress profile of the compressive region within the inner portion of the compressive region comprises an error function.
26. The glass article of any of claims 14 to 25, wherein the tensile region comprises a core layer comprising a core glass composition, and the compressive region comprises a clad layer comprising a clad glass composition that is different than the core glass composition.
27. The glass article of claim 26, wherein a core coefficient of thermal expansion (CTE) of the core glass composition is at least about 10"7/°C higher than a clad CTE of the clad glass composition.
28. The glass article of claim 26 or claim 27, wherein the compressive region comprises a first compressive region and a second compressive region, and the tensile region is disposed between the first compressive region and the second compressive region.
29. A method comprising:
contacting a molten core glass with a molten clad glass to form a laminated glass article comprising a core layer and a clad layer directly adjacent to the core layer, a core coefficient of thermal expansion (CTE) of the core glass at least about 10"7/°C higher than a clad CTE of the clad glass;
cooling the laminated glass article to form a tensile stress in the core layer and a compressive stress in the clad layer resulting from the difference between the core CTE and the clad CTE;
chemically strengthening the laminated glass article to increase the compressive stress in an outer portion of the clad layer extending inward from an outer surface of the clad layer toward the core layer to an outer depth of layer (DOL) without increasing the compressive stress in an intermediate portion of the clad layer extending from the outer DOL inward toward the core layer to an intermediate DOL, a thickness of the
intermediate portion of the clad layer between about 82% and about 99.9% of a thickness of the clad layer.
30. The method of claim 29, wherein a compressive stress profile of the clad layer comprises a first compressive stress CSi and a second compressive stress CS2 that is less than CSi, a compressive stress of the outer portion is CSi at the outer surface and CS2 at the outer DOL, and a compressive stress of the intermediate portion is substantially constant at CS2.
31 . The method of claim 29 or claim 30, further comprising causing ion exchange between the core layer and the clad layer to increase the compressive stress in an inner portion of the clad layer extending from the intermediate DOL inward toward the tensile region to an inner DOL.
32. The method of claim 31 , wherein:
a compressive stress profile of the clad layer comprises a first compressive stress CSi, a second compressive stress CS2, and a third compressive stress CS3 that is between CS2 and CSi; and
a compressive stress of the outer portion is CSi at the outer surface and CS2 at the outer DOL, a compressive stress of the intermediate portion is substantially constant at CS2, and a compressive stress of the inner portion is CS2 at the intermediate DOL and CS3 at the inner DOL.
33. A consumer electronic device comprising at least one of a cover, a color filter, a thin film transistor (TFT), or a touch sensor comprising the glass article of any of claims 1 to 28.
34. An architectural panel comprising the glass article of any of claims 1 to 28.
35. An automotive window comprising the glass article of any of claims 1 to 28.
PCT/US2015/054348 2014-10-07 2015-10-07 Glass article with determined stress profile and method of producing the same WO2016057590A1 (en)

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US15/516,961 US11123959B2 (en) 2014-10-07 2015-10-07 Glass article with determined stress profile and method of producing the same
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EP3204337B1 (en) 2020-04-22
CN107001096A (en) 2017-08-01
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US11123959B2 (en) 2021-09-21
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