H01G9/2086

ROLLED HETERO-STRUCTURES AND METHOD OF MANUFACTURING ROLLED HETERO-STRUCTURES

We disclose herein a hetero-structure comprising: a curved material; at least one layer of a first material rolled around the curved material; at least one intermediate layer rolled on the at least one layer of the first material; and at least one layer of a second material rolled around the at least one intermediate layer.

HYBRID FIBER FOR DETECTION OF UV LIGHT

A hybrid fiber for detection of UV light is described. The hybrid fiber includes a conductor, a first layer, a photoactive layer, a second layer, and a transparent electrode. The conductor includes a conductive material. The first layer includes a first material deposited onto the conductor. The first material is configured to transport holes and block electrons. The photoactive layer includes a photoactive material coating the first layer. The photoactive material includes a first submaterial and a second submaterial. The second layer includes a second material deposited onto the photoactive layer. The second material is configured to block holes and transport electrons. The transparent electrode includes a transparent electrode material deposited onto the second layer.

Rolled hetero-structures and method of manufacturing rolled hetero-structures

We disclose herein a hetero-structure comprising: a curved material; at least one layer of a first material rolled around the curved material; at least one intermediate layer rolled on the at least one layer of the first material; and at least one layer of a second material rolled around the at least one intermediate layer.

PHOTOVOLTAIC TEXTILE

A textile includes a flexible substrate and a photovoltaic tape adjacent to the flexible substrate. The textile may have at least one of the following properties: a power to weight ratio of at least 10 Watts per pound, a total weight to surface area of not greater than 500 grams/square-meters, and an interconnect located at an end of the photovoltaic tape. In an embodiment, the photovoltaic tape is rollable on a length of the photovoltaic tape. In an embodiment, the flexible substrate is foldable along a length contiguous to an outside edge of the photovoltaic tape.

Fiber-shaped electric energy harvesting and storage device and method of manufacturing the same

A fiber-shaped electric energy harvesting and storage device includes a substrate having a fiber shape, a lithium ion storage unit disposed to surround the substrate, and a plurality of photoelectric conversion units disposed to surround the lithium ion storage unit.

Dye-sensitized solar cells including carbon nanotube yarns

A dye-sensitized solar cell is provided. The dye-sensitized solar cell includes a working electrode which includes a plurality of twisted carbon nanotube yarns. The dye-sensitized solar cell also includes a hybrid sensitizer. The hybrid sensitizer includes a nanoporous titanium oxide layer coated on the plurality of twisted carbon nanotube yarns, a microporous titanium oxide layer coated onto the nanoporous titanium oxide layer, and dye particles and quantum dots disposed in the pores of the microporous titanium oxide layer. In addition, the dye-sensitized solar cell includes a conducting electrode which includes at least one carbon nanotube yarn disposed about the hybrid sensitizer. The dye-sensitized solar cell also includes a solid state electrolyte disposed about the hybrid sensitizer.

Hybrid fiber for detection of UV light

A hybrid fiber for detection of UV light is described. The hybrid fiber includes a conductor, a first layer, a photoactive layer, a second layer, and a transparent electrode. The conductor includes a conductive material. The first layer includes a first material deposited onto the conductor. The first material is configured to transport holes and block electrons. The photoactive layer includes a photoactive material coating the first layer. The photoactive material includes a first submaterial and a second submaterial. The second layer includes a second material deposited onto the photoactive layer. The second material is configured to block holes and transport electrons. The transparent electrode includes a transparent electrode material deposited onto the second layer.

FIBER-SHAPED ELECTRIC ENERGY HARVESTING AND STORAGE DEVICE AND METHOD OF MANUFACTURING THE SAME
20170201210 · 2017-07-13 ·

A fiber-shaped electric energy harvesting and storage device includes a substrate having a fiber shape, a lithium ion storage unit disposed to surround the substrate, and a plurality of photoelectric conversion units disposed to surround the lithium ion storage unit.

Wrapped optoelectronic devices and methods for making same

In various embodiments, optoelectronic devices are described herein. The optoelectronic device may include an optoelectronic cell arranged so as to wrap around a central axis wherein the cell includes a first conductive layer, a semi-conductive layer disposed over and in electrical communication with the first conductive layer, and a second conductive layer disposed over and in electrical communication with the semi-conductive layer. In various embodiments, methods for making optoelectronic devices are described herein. The methods may include forming an optoelectronic cell while flat and wrapping the optoelectronic cell around a central axis. The optoelectronic devices may be photovoltaic devices. Alternatively, the optoelectronic devices may be organic light emitting diodes.

PHOTOELECTRIC CONVERSION ELEMENT, DYE-SENSITIZED SOLAR CELL, AND DYE-SENSITIZED SOLAR CELL MODULE

There is provided a photoelectric conversion element in which a porous semiconductor layer is prevented from being detached from an upper supporting body, wherein a photoelectric conversion layer, a collecting electrode, an insulating layer, and a counter electrode are disposed between an upper supporting body and a lower supporting body in this order from the upper supporting body side, the upper supporting body being located at a light incidence side and having a light transmission property, the lower supporting body being located opposite to the upper supporting body, the photoelectric conversion layer having a porous semiconductor layer, a carrier transport material being included between the upper supporting body and the lower supporting body, and an adhesion portion having a film thickness of 0.5 to 10 nm is disposed at least adjacent to and between the upper supporting body and the porous semiconductor layer.