Abstract:
Boron is diffused into selected areas of each main face of an N silicon substrate and gallium is diffused into the entire main face to form a P-N junction including deeper portions alternating shallower portion. Selective etching is effected to form grooves in the shallower junction portions for dividing the P-N junction. Both main faces of the substrate except for the grooves are metallized and a passivation layer is applied to each groove. Alternatively, in order to form the P-N junction as above described, gallium is selectively diffused in the substrate followed by a further diffusion of the gallium.
Abstract:
A woven mesh substrate with semiconductor elements and a method and a device for manufacturing such a substrate, and more particularly a technique that makes it possible to exploit a woven mesh substrate with semiconductor elements in which a plurality of spherical semiconductor elements having a light receiving function or a light-emitting function are installed on a woven mesh substrate in net form that is made up from a plurality of vertical strands that are insulating and a plurality of horizontal strands that are conductive.
Abstract:
A laminated solar battery (200) wherein four solar cell modules are incorporated and integrally laminated is provided with four types of solar cell modules (90, 100, 70 and 60) which have different sensitivity wavelength bands and are so laminated that the shorter the center wavelength in the sensitivity wavelength band is, the more near the module is located to the incidental side of sunlight, wherein each of the three types solar cell modules (90, 100 and 70) is constituted with cell group modules having plural nearly spherical solar cells (30, 40 and 10) aligned in plural columns and plural rows and the lowest solar cell module (60) is constituted with a planar light receiving module.
Abstract:
A solar battery module as a panel-shaped semiconductor module comprises multiple rod-shaped electric power generation semiconductor elements arranged in multiple rows and columns, a conductive connection mechanism connecting in series multiple semiconductor elements in each column and electrically connecting in parallel multiple semiconductor elements in each row, and a conductive inner metal case housing the multiple semiconductor elements and constituting the conductive connection mechanism, wherein each row of semiconductor elements is housed in each reflecting surface-forming groove of the inner metal case, the positive electrodes of the semiconductor electrodes are connected to the bottom plate and the negative electrodes are connected to finger leads, and the top is covered with a transparent cover member.
Abstract:
A solar battery module as a panel-shaped semiconductor module comprises multiple rod-shaped electric power generation semiconductor elements arranged in multiple rows and columns, a conductive connection mechanism connecting in series multiple semiconductor elements in each column and electrically connecting in parallel multiple semiconductor elements in each row, and a conductive inner metal case housing the multiple semiconductor elements and constituting the conductive connection mechanism, wherein each row of semiconductor elements is housed in each reflecting surface-forming groove of the inner metal case, the positive electrodes of the semiconductor electrodes are connected to the bottom plate and the negative electrodes are connected to finger leads, and the top is covered with a transparent cover member.
Abstract:
In the solar battery module 20, solar battery cells 10 arranged in a matrix of eight rows and four columns with their conducting direction aligned and five plate spring members 22 having nearly an inverted U-shaped cross-section are housed in an inner space surrounded by a support substrate 21, an outer frame, a rubber packing frame, and a glass casing plate 25, and the plate spring members 22 each have a pair of connection flanges 22a at the bottom. The plate spring members 22 are provided on either side of columns of multiple solar battery cells 10. Eight solar battery cells 10 are interposed between the connection flanges 22a of the plate spring members on either side of them, whereby they are parallel-connected. Four columns of solar battery cells 10 are serially-connected by five plate spring members 22 and the output is retrieved through the positive electrode coating 28 and negative electrode coating 29.
Abstract:
A light-emitting device has spherical photo-electric converting elements that have a substantially spherical acceptance surface, respectively; a light emitting diode powered by the spherical photo-electric converting elements; a control circuit; and a sealing member that integrates the spherical photo-electric converting elements, the light emitting diode and the control circuit. The control circuit is equipped with a light emitting control circuit including a photo-detecting sensor, a charge control circuit and a condenser.
Abstract:
The present invention is a semiconductor module (20) in which, for example, twenty-five semiconductor devices (10) with a pnotoelectric conversion function are arranged in the form of a five row by five column matrix via an electrically conductive mechanism including of six connecting leads (21 to 26). The semiconductor devices (10) in each column are connected in series, and the semiconductor devices (10) in each row are connected in parallel. Positive and negative terminals, which are embedded in a light transmitting member (28) made of a transparent synthetic resin and which protrude to the outside, are also provided. The semiconductor device (10) comprises a diffusion layer, a pn junction, and one flat surface on the surface of a spherical p-type semiconductor crystal, for example. A positive electrode 6a formed on the flat surface and connected to the p-type semiconductor crystal, and a negative electrode 6b that lies opposite the positive electrode 6a with the center of the p-type semiconductor crystal interposed therebetween, are provided.
Abstract:
A light receiving panel provided with a plurality of particulate semiconductor elements (solar cells) or a light emitting panel provided with a plurality of particulate semiconductor elements (light emitting diodes) is disclosed. In the solar cell panel, a printed wiring sheet is constructed by forming printed wiring and retaining holes in the form of a matrix with a plurality of rows and a plurality of columns in a printed wiring sheet material made of a thin transparent synthetic resin; a plurality of solar cells are respectively mounted in the plurality of retaining holes, these cells are resin-sealed by a transparent synthetic resin material, a positive pole terminal and negative pole terminal exposed to the outside are formed, and a plurality of solar cell panels are constructed so that series connection, parallel connection or series-parallel connection is possible. The solar cell panel may also be constructed so that deformation in the manner of two dimensional or three dimensional curved surface is possible.
Abstract:
A power generating system 1 comprises a power generator 2 generating DC power, and an inverter circuit 3 for converting DC power into AC power; the power generator 2 comprises a plurality of power generating modules 21-28 each comprising a plurality of power generating units 30 and at least one electric storage means connected to each of the plurality of power generating modules 21-28. A plurality of first switch means S11a-17a connect/disconnect each of the positive electrodes 62 of the plurality of power generating modules 22-28 to/from a positive bus 6, a plurality of second switch means S11b-17b connect/disconnect each of the positive electrodes 62 of the plurality of power generating modules 22-28 to/from the negative electrodes 60 of the power generating modules 21-27 contiguous to the one side, a plurality of third switch means S1-S7 connect/disconnect each of the negative electrodes 60 of the plurality of power generating modules 21-27 to/from a negative bus 7, and the DC output voltage can be increased/decreased stepwise by switching the switch means S1-S7, S11a-17a and S11b-S17b.