Patent classifications
C03C17/245
Glass ceramic for ultraviolet lithography and method of manufacturing thereof
An extreme ultraviolet mask and method of manufacture thereof includes: providing a glass-ceramic block; forming a glass-ceramic substrate from the glass-ceramic block; and depositing a planarization layer on the glass-ceramic substrate.
Chemical vapor deposition process for forming a silicon oxide coating
A chemical vapor deposition process for forming a silicon oxide coating includes providing a moving glass substrate. A gaseous mixture is formed and includes a silane compound, a first oxygen-containing molecule, a radical scavenger, and at least one of a phosphorus-containing compound and a boron-containing compound. The gaseous mixture is directed toward and along the glass substrate. The gaseous mixture is reacted over the glass substrate to form a silicon oxide coating on the glass substrate at a deposition rate of 150 nm*m/min or more.
Chemical vapor deposition process for forming a silicon oxide coating
A chemical vapor deposition process for forming a silicon oxide coating includes providing a moving glass substrate. A gaseous mixture is formed and includes a silane compound, a first oxygen-containing molecule, a radical scavenger, and at least one of a phosphorus-containing compound and a boron-containing compound. The gaseous mixture is directed toward and along the glass substrate. The gaseous mixture is reacted over the glass substrate to form a silicon oxide coating on the glass substrate at a deposition rate of 150 nm*m/min or more.
Electronic Device Coatings With Organic Components
An electronic device may have a housing surrounding an interior in which electrical components are mounted. A display may be mounted to housing structures in the device. The housing may have a rear wall. The display cover layer and rear wall of the housing may be formed from transparent glass layers. Coatings may be formed on inwardly and/or facing surfaces of the transparent glass layers. A coating on a transparent glass layer may be formed from one or more PVD layers. A buffer layer that includes a hybrid material with an organic component may be interposed between the glass layer and the PVD layers to increase the retained bend strength of the glass layer. Alternatively or additionally, the PVD layers may form a thin-film interference filter, and some of the PVD layers may be formed from the hybrid material to increase the retained bend strength of the glass layer.
Electronic Device Coatings With Organic Components
An electronic device may have a housing surrounding an interior in which electrical components are mounted. A display may be mounted to housing structures in the device. The housing may have a rear wall. The display cover layer and rear wall of the housing may be formed from transparent glass layers. Coatings may be formed on inwardly and/or facing surfaces of the transparent glass layers. A coating on a transparent glass layer may be formed from one or more PVD layers. A buffer layer that includes a hybrid material with an organic component may be interposed between the glass layer and the PVD layers to increase the retained bend strength of the glass layer. Alternatively or additionally, the PVD layers may form a thin-film interference filter, and some of the PVD layers may be formed from the hybrid material to increase the retained bend strength of the glass layer.
METHOD FOR JOINING TRANSPARENT SUBSTRATES, AND LAMINATED BODY
A method of bonding transparent substrates is provided, comprising: preparing a pair of transparent substrates; forming a thin film of aluminum oxide by a sputtering method, on a bonding surface of the transparent substrates; contacting the aluminum oxide thin films in the air to bond the pair of transparent substrates; and heating the bonded pair of transparent substrates.
METHOD FOR JOINING TRANSPARENT SUBSTRATES, AND LAMINATED BODY
A method of bonding transparent substrates is provided, comprising: preparing a pair of transparent substrates; forming a thin film of aluminum oxide by a sputtering method, on a bonding surface of the transparent substrates; contacting the aluminum oxide thin films in the air to bond the pair of transparent substrates; and heating the bonded pair of transparent substrates.
DECORATIVE MEMBER AND MANUFACTURING METHOD THEREFOR
The present disclosure relates to a decoration element comprising a light reflective layer; a light absorbing layer provided on the light reflective layer; and a color developing layer comprising a color film provided on a surface opposite to the surface facing the light absorbing layer of the light reflective layer, between the light reflective layer and the light absorbing layer, or on a surface opposite to the surface facing the light reflective layer of the light absorbing layer.
DECORATIVE MEMBER AND MANUFACTURING METHOD THEREFOR
The present disclosure relates to a decoration element comprising a light reflective layer; a light absorbing layer provided on the light reflective layer; and a color developing layer comprising a color film provided on a surface opposite to the surface facing the light absorbing layer of the light reflective layer, between the light reflective layer and the light absorbing layer, or on a surface opposite to the surface facing the light reflective layer of the light absorbing layer.
METHOD OF MAKING A COATED GLASS ARTICLE
The invention provides a method of making a coated glass article in which a gaseous mixture is formed including an aluminum-containing compound, a boron-containing compound, and an inert gas. This gaseous mixture is delivered to a location above a major surface of a glass substrate to deposit a coating comprising aluminum, boron, and oxygen over the major surface of the glass substrate.