H10K39/18

Bypass Diode Interconnect for Thin Film Solar Modules
20230096010 · 2023-03-30 ·

Solar cell interconnect with bypass diodes are described. In an embodiment, a semiconductor-based bypass layer is formed over a top electrode layer of a solar cell and spans over a vertical interconnect providing vertical interconnection between the bottom electrode layer and top electrode layer of serial solar cells. A bypass electrode layer is formed over the semiconductor-based bypass layer and in contact with the top electrode layer for one of the solar cells.

SOLAR CELL MODULE

A solar cell module of the embodiment includes a first solar cell element and a second solar cell element disposed to be aligned, a connection member, and a shield member. The connection member electrically connects a first electrode of the first solar cell element and a second electrode of the second solar cell element. The first solar cell element and the second solar cell element each include a first cell containing a perovskite semiconductor and a second cell containing silicon. The first electrode is disposed at an end portion in a first direction in which the first cell is disposed in a thickness direction. The second electrode is disposed at an end portion in a second direction in which the second cell is disposed in the thickness direction. The shield member is made of an electrically insulating material and is disposed between an end portion of the first electrode of the first solar cell element on the second solar cell element side and the connection member.

DETECTION DEVICE
20230125919 · 2023-04-27 ·

A detection device includes a photoelectric conversion portion in which a plurality of photodiodes are arranged in a planar shape, a light source configured to irradiate the photodiodes with light, and a heating electrode provided so as to face the photoelectric conversion portion, and configured to generate heat and conduct the heat to the photoelectric conversion portion.

HIGH PERFORMANCE PEROVSKITE SOLAR CELLS, MODULE DESIGN, AND MANUFACTURING PROCESSES THEREFOR

High-performance perovskite solar cell (PSC) devices, arrays thereof, and modules manufactured on flexible and stretchable substrates using roll-to-roll high throughput manufacturing techniques. The flexible cells can be cut into strips and are connected via flexible and/or stretchable interconnects. The interconnect can be a layer deposited on a wavy surface of the stretchable substrate, a coiled or hinged wire, or a conductive paste that can be deformed prior to curing. The highly deformable solar modules can conform to complex organic contours and shapes, such as those that are common in vehicle designs. Such shapes typically require at least one axis of flex and at least one axis of stretch.

HIGH PERFORMANCE PEROVSKITE SOLAR CELLS, MODULE DESIGN, AND MANUFACTURING PROCESSES THEREFOR

High-performance perovskite solar cell (PSC) devices, arrays thereof, and modules manufactured on flexible and stretchable substrates using roll-to-roll high throughput manufacturing techniques. The flexible cells can be cut into strips and are connected via flexible and/or stretchable interconnects. The interconnect can be a layer deposited on a wavy surface of the stretchable substrate, a coiled or hinged wire, or a conductive paste that can be deformed prior to curing. The highly deformable solar modules can conform to complex organic contours and shapes, such as those that are common in vehicle designs. Such shapes typically require at least one axis of flex and at least one axis of stretch.

SOLAR CELL MODULE, ELECTRONIC DEVICE, AND POWER SUPPLY MODULE

A solar cell module includes a first substrate and a plurality of photoelectric conversion elements disposed on the first substrate. Each of the plurality of photoelectric conversion elements includes a first electrode, an electron transport layer, a perovskite layer, a hole transport layer, and a second electrode. In at least two of the photoelectric conversion elements adjacent to each other, the hole transport layers are extended continuous layers; and the first electrodes, the electron transport layers, and the perovskite layers in the at least two of the photoelectric conversion elements adjacent to each other are separated by the hole transport layer. The hole transport layer includes, as hole transport material, a polymer having a weight average molecular weight of 2,000 or more or a compound having a molecular weight of 2,000 or more.

SOLAR CELL MODULE, ELECTRONIC DEVICE, AND POWER SUPPLY MODULE

A solar cell module includes a first substrate and a plurality of photoelectric conversion elements disposed on the first substrate. Each of the plurality of photoelectric conversion elements includes a first electrode, an electron transport layer, a perovskite layer, a hole transport layer, and a second electrode. In at least two of the photoelectric conversion elements adjacent to each other, the hole transport layers are extended continuous layers; and the first electrodes, the electron transport layers, and the perovskite layers in the at least two of the photoelectric conversion elements adjacent to each other are separated by the hole transport layer. The hole transport layer includes, as hole transport material, a polymer having a weight average molecular weight of 2,000 or more or a compound having a molecular weight of 2,000 or more.

Photovoltaic device and method of manufacturing the same

A solar module (and its fabrication method) is presented where a supporting substrate comprises a network of finger traces connected to bus bars. Photo-active layer portions and upper electrode layer portions are deposited on the substrate thereby forming a network of cells. The cells are connected in series by connecting the bus bar of one cell to the upper electrode layer of the adjacent cell, and the bus bars of two adjacent cells are coupled through a bypass element for protecting the cell array.

SOLAR CELL AND SOLAR CELL MODULE INCLUDING THE SAME
20240032314 · 2024-01-25 ·

A solar cell includes a first photoelectric conversion part, a second photoelectric conversion part, a first electrode, and a second electrode. The first photoelectric conversion part includes a photoelectric conversion layer containing a perovskite compound, a first transport layer, and a second transport layer. The second photoelectric conversion part is arranged below the second transport layer of the first photoelectric conversion part and has a different material or structure from the first photoelectric conversion part. The first electrode is electrically connected to the first photoelectric conversion part on one surface of the first photoelectric conversion part, and the second electrode is electrically connected to the second photoelectric conversion part below the second photoelectric conversion part. The first electrode has a stacking structure of at least two layers, and the second electrode is formed as a single layer.

SOLAR CELL AND SOLAR CELL MODULE INCLUDING THE SAME
20240032314 · 2024-01-25 ·

A solar cell includes a first photoelectric conversion part, a second photoelectric conversion part, a first electrode, and a second electrode. The first photoelectric conversion part includes a photoelectric conversion layer containing a perovskite compound, a first transport layer, and a second transport layer. The second photoelectric conversion part is arranged below the second transport layer of the first photoelectric conversion part and has a different material or structure from the first photoelectric conversion part. The first electrode is electrically connected to the first photoelectric conversion part on one surface of the first photoelectric conversion part, and the second electrode is electrically connected to the second photoelectric conversion part below the second photoelectric conversion part. The first electrode has a stacking structure of at least two layers, and the second electrode is formed as a single layer.