Abstract:
A detector which may include the following: A flat base plate. An (NxM) array of detector tiles attaching on to the base plate, each said detector tile comprising an array of photo-sensors fabricated on a substrate having necessary circuitry. A plurality of data finger tiles attaching on to the said base plate, each data finger tile comprising a plurality of data lines. A plurality of scan finger tiles attaching on to the said base plate, each scan finger tile comprising a plurality of scan lines. An electrical interconnection network interconnecting the adjacent said detector tiles on their front surfaces. An electrical interconnection network connecting N units of the said detector tiles to a plurality of the said data finger tiles. An electrical interconnection network connecting M units of the said detector tiles to a plurality of the said scan finger tiles.
Abstract:
Embodiments of the present invention are directed to compositions and processing methods of rare-earth vanadate based materials that have high emission efficiency in a wavelength range of 480 to 700nm with the maximum intensity at 535nm (bright yellow) under UV, X-ray and other forms of high-energy irradiation. Embodiments of the present invention are directed to general chemical compositions of the form (Gd
Abstract:
An improved apparatus for producing microarrays of chemical and biochemical materials. The apparatus includes one or more pins, a holder for the pins and a dispensing tray for holding one or more liquids. The apparatus is microfabricated from semiconductor materials such as silicon, silicone oxides, silicon carbide, silicon nitride, polymers, ceramics, non-ferric alloys using chemical and physical microfabrication and photolithographic techniques.
Abstract:
Among other things, assays and methods of diagnosis and treatment of disease ( e.g. , Alzheimer's disease) based on the surprsing observation of an interaction between amyloid or its aggregates with the sodium channel are provided. In particular, methods to identify compounds that modulate this interaction are provided, as well as methods of diagnosis and treatment that are based on this interaction.
Abstract:
Embodiments of the present invention are directed to compositions and processing methods of rare-earth vanadate based materials that have high emission efficiency in a wavelength range of 480 to 700nm with the maximum intensity at 535nm (bright yellow) under UV, X-ray and other forms of high-energy irradiation. Embodiments of the present invention are directed to general chemical compositions of the form (Gd 1-x A x )(V 1-y B y )(O 4-z C z ), where A is selected from the group consisting of Bi, Tl, Y, La, Ce, Pr, Nd, Pm, Sm, Eu, Tb, Dy, Ho, Er, Tm, Yb, and Lu for 0
Abstract:
Viewable images may be created in or on glass, or any other at least partially transparent substrate (14), using microstructures (22) to scatter light from a projector (18), while the glass maintains transparent or translucent properties. The microstructures may be integrated into the glass in patterns.
Abstract:
An improved apparatus for producing microarrays of chemical and biochemical materials. The apparatus includes one or more pins (20), a holder (40) for the pins and a dispensing tray (60) for holding one or more liquids. The apparatus is microfabricated from semiconductor materials such as silicon, silicone oxides, silicon carbide, silicon nitride, polymers, ceramics, non-ferric alloys using chemical and physical microfabrication and photolithographic techniques.
Abstract:
Viewable images (15, 16) may be created in glass (14) by using a projector (18) which projects ultraviolet light to excite light emitting material. Clear images may be created in glass because the size of the light emitting particles in the glass is less than 400 nanometers. The visible illumination of a transparent substrate to display an image is possible, while the transparent substrate remains transparent. For example, drivers of automobiles may view images (e.g. map images) on their windshields while they are driving.
Abstract:
Viewable images (12) may be created in glass by using a projector (20) which projects ultraviolet light to excite light emitting material (15, 16). Clear images may be created in glass because the size the light emitting particles is less than 400 nanometers. The light emitting material (15, 16) is integrated into a substantially transparent substrate (14). The light emitting materials emits visible light in response to absorption of ultraviolet light from a projector (20).
Abstract:
In accordance with embodiments, viewable imagines can be created in glass. Viewable images may be created in or on glass (or other at least partially transparent substrate), by using microstructures to scatter light from a projector, while the glass maintains transparent or translucent properties. In embodiments, the microstructures are integrated into glass in patterns.