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    • 3. 发明授权
    • Manufacturing apparatus and method for large-scale production of thin-film solar cells
    • 用于大规模生产薄膜太阳能电池的制造装置和方法
    • US08618410B2
    • 2013-12-31
    • US13173507
    • 2011-06-30
    • Dennis R. Hollars
    • Dennis R. Hollars
    • H01L31/18H01L31/0264
    • H01L31/18C23C14/0057C23C14/3414C23C14/352C23C14/562H01L31/022425H01L31/0322H01L31/0336Y02E10/541Y02P70/521
    • A method of manufacturing improved thin-film solar cells entirely by sputtering includes a high efficiency back contact/reflecting multi-layer containing at least one barrier layer consisting of a transition metal nitride. A copper indium gallium diselenide (Cu(InXGa1-X)Se2) absorber layer (X ranging from 1 to approximately 0.7) is co-sputtered from specially prepared electrically conductive targets using dual cylindrical rotary magnetron technology. The band gap of the absorber layer can be graded by varying the gallium content, and by replacing the gallium partially or totally with aluminum. Alternately the absorber layer is reactively sputtered from metal alloy targets in the presence of hydrogen selenide gas. RF sputtering is used to deposit a non-cadmium containing window layer of ZnS. The top transparent electrode is reactively sputtered aluminum doped ZnO. A unique modular vacuum roll-to-roll sputtering machine is described. The machine is adapted to incorporate dual cylindrical rotary magnetron technology to manufacture the improved solar cell material in a single pass.
    • 完全通过溅射制造改进的薄膜太阳能电池的方法包括含有由过渡金属氮化物组成的至少一个阻挡层的高效率背接触/反射多层。 使用双圆柱形旋转磁控管技术,由专门制备的导电靶共溅射铜铟镓二硒化物(Cu(In x Ga 1-x)Se 2)吸收层(X为1至约0.7)。 吸收层的带隙可以通过改变镓含量来分级,并且通过用铝部分或全部替换镓来分级。 或者,在硒化氢气体存在下,吸收层从金属合金靶反应溅射。 使用RF溅射沉积含有ZnS的不含镉的窗口层。 顶部透明电极是反应溅射的铝掺杂的ZnO。 描述了一种独特的模块化真空辊对辊溅射机。 该机器适用于采用双圆柱形旋转磁控管技术,以单程制造改进的太阳能电池材料。
    • 8. 发明申请
    • INTEGRATED JUMPERS FOR BUILDING INTEGRABLE PHOTOVOLTAIC MODULES
    • 用于建立可集成的光伏模块的集成跳线
    • US20130146125A1
    • 2013-06-13
    • US13324902
    • 2011-12-13
    • Michael Meyers
    • Michael Meyers
    • H01L31/05H01L31/18
    • H01L31/05H01R12/79H01R13/5219H01R2103/00H02S20/23H02S40/36Y02A30/62Y02B10/12Y02B10/14Y02E10/50Y10T29/49355Y10T29/49826
    • Provided are novel building integrable photovoltaic (BIPV) modules having integrated jumpers for interconnecting similar modules in adjacent rows. An integrated jumper is provided on a back side of the photovoltaic portion of the module and includes at least two interconnected jumper contact points. The module also has two connectors provided on the front side of its flap portion. Each connector has at least one connector contact point connected to one or more photovoltaic cells of the module. When a module is positioned over flap portions of two other modules previously installed in an adjacent row, the two jumper contact points on the back side of this new module make electrical connections to the two connector contact points on the front side of the installed modules. In turn, these connections interconnect the photovoltaic cells of the two modules without any need for additional connectors or operations.
    • 提供了具有用于互连相邻行中的相似模块的集成跳线的新型建筑可集成光伏(BIPV)模块。 在模块的光伏部分的背面设有集成跳线,并且包括至少两个互连的跳线接触点。 模块还具有设置在其翼片部分的前侧上的两个连接器。 每个连接器具有连接到模块的一个或多个光伏电池的至少一个连接器接触点。 当模块定位在预先安装在相邻行中的两个其他模块的折翼部分上时,该新模块背面的两个跳线接触点与已安装模块正面的两个连接器接触点进行电连接。 反过来,这些连接将两个模块的光​​伏电池互连,而不需要额外的连接器或操作。
    • 9. 发明申请
    • BUILDING INTEGRABLE INTERCONNECTION STRUCTURES HAVING FIELD-CONFIGURABLE SHAPES
    • 建立具有现场配置形状的整体互连结构
    • US20130067836A1
    • 2013-03-21
    • US13234454
    • 2011-09-16
    • Adam C. Sherman
    • Adam C. Sherman
    • E04D13/18E04B1/38
    • H02S20/25H02S20/22H02S40/36Y02A30/62Y02B10/12Y02B10/14
    • Provided are novel building integrable interconnection structures having field-configurable shapes and methods of installing thereof. An interconnection structure may be cut or otherwise modified in the field during installation to form one or more openings. These openings can then be positioned around various obstacles that are frequently present in building installation areas. Some examples of such obstacles include chimneys, vents, and skylights. In some embodiments, the interconnection structures can be provided as part of a set or configured to be installed in an array with building integrable photovoltaic (BIPV) modules of the same size. This installation configuration allows preserving an offset between adjacent rows of the array. Furthermore, the interconnection structures can have the same perimeter features as the BIPV modules, such as electrical connectors and moisture flaps. These features provide electrical continuity and sealing characteristics in an array of BIPV modules despite the presence of obstacles on building structures.
    • 提供了具有现场可配置形状的新颖的建筑可集成互连结构及其安装方法。 互连结构可以在安装期间在现场切割或以其它方式进行修改以形成一个或多个开口。 然后,这些开口可以定位在建筑物安装区域中经常存在的各种障碍物周围。 这些障碍的一些例子包括烟囱,通风口和天窗。 在一些实施例中,互连结构可以作为一组的一部分提供,或者被配置为安装在具有相同尺寸的建筑物可集成光伏(BIPV)模块的阵列中。 此安装配置允许保留阵列的相邻行之间的偏移量。 此外,互连结构可以具有与BIPV模块相同的外围特征,例如电连接器和湿气襟翼。 尽管在建筑结构上存在障碍物,但这些特征提供了BIPV模块阵列中的电气连续性和密封特性。