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    • 87. 发明授权
    • Method for forming an electrical connection
    • 电连接方法
    • US07908743B2
    • 2011-03-22
    • US12430807
    • 2009-04-27
    • Zhiyong LiChuck LuuGopalakrishna B. PrabhuDanny Cam Toan LuGarry KwongDavid Tanner
    • Zhiyong LiChuck LuuGopalakrishna B. PrabhuDanny Cam Toan LuGarry KwongDavid Tanner
    • H05K3/36
    • H05K3/321H01L21/67138H01L21/67712H01L21/67727H01L21/67754H01L21/6776H01L31/0201H01L31/046H01L31/048H01L31/0512H01L31/188H05K2203/0278Y02E10/50Y10T29/49117Y10T29/49126Y10T29/4913Y10T29/49155
    • Embodiments of the present invention provide a method of forming an electrical connection on a device. In one embodiment, the electrical connection is attached to the device via an adhesive having electrically conductive particles disposed therein. In one embodiment, the adhesive is cured while applying pressure such that the conductive particles align, have a reduced particle-to-particle spacing, or come into contact with each other to provide a more directly conductive (less resistive) path between the electrical connection and the device. In one embodiment of the present invention, a method for forming an electrical lead on a partially formed solar cell during formation of the solar cell device is provided. The method comprises placing a side-buss wire onto a pattern of electrically conductive adhesive disposed on a back contact layer of a solar cell device substrate, laminating the side-buss wire and electrically conductive adhesive between the solar cell device substrate and a back glass substrate to form a composite solar cell structure, and curing the electrically conductive adhesive while applying pressure and heat to the composite solar cell structure.
    • 本发明的实施例提供了一种在设备上形成电连接的方法。 在一个实施例中,电连接通过其中布置有导电颗粒的粘合剂附接到装置。 在一个实施方案中,粘合剂在施加压力下固化,使得导电颗粒对准,具有减小的颗粒间距或彼此接触以在电连接之间提供更直接的导电(较小电阻)的路径 和设备。 在本发明的一个实施例中,提供了在形成太阳能电池器件期间在部分形成的太阳能电池上形成电引线的方法。 该方法包括将侧面布线布置在设置在太阳能电池器件基板的背接触层上的导电粘合剂图案上,在侧太阳能电池器件基板和背玻璃基板之间层叠侧母线和导电粘合剂 以形成复合太阳能电池结构,并且在对复合太阳能电池结构施加压力和加热的同时固化导电粘合剂。
    • 90. 发明授权
    • Raman and hyper-Raman excitation using superlensing
    • 拉曼和超拉曼激发使用超透镜
    • US07474397B2
    • 2009-01-06
    • US11413377
    • 2006-04-28
    • Shih-Yuan WangZhiyong Li
    • Shih-Yuan WangZhiyong Li
    • G01J3/44
    • G01J3/02G01J3/0208G01N21/658
    • Raman-enhancing structures include a layer of dielectric material, a superlens configured to focus electromagnetic radiation having a wavelength greater than about 100 nanometers to a two-dimensional focal area having linear dimensions less than about 100 nanometers on a surface of the layer of dielectric material, and at least two nanoparticles comprising a Raman-enhancing material disposed proximate the focal area. Additional Raman-enhancing structures include a layer of dielectric material, a layer of conductive material, and at least two nanoparticles comprising a Raman-enhancing material disposed on a second, opposite surface of the layer of dielectric material. The layer of conductive material has a plurality of apertures therethrough that are arranged in a two-dimensional array. Methods for conducting Raman spectroscopy are performed using such structures and systems.
    • 拉曼增强结构包括介电材料层,配置成将具有大于约100纳米的波长的电磁辐射聚焦到具有小于约100纳米的线性尺寸的二维聚焦区域的超薄膜在电介质材料层的表面上 以及至少两个纳米颗粒,其包含靠近焦点区域设置的拉曼增强材料。 附加的拉曼增强结构包括电介质材料层,导电材料层,以及至少两个包含拉曼增强材料的纳米颗粒,该拉曼增强材料设置在电介质材料层的第二相对表面上。 导电材料层具有以二维阵列布置的穿过其中的多个孔。 使用这种结构和系统进行拉曼光谱的方法。