科技报告详细信息
NREL Researchers Demonstrate External Quantum Efficiency Surpassing 100% in a Quantum Dot Solar Cell (Fact Sheet)
关键词: EFFICIENCY;    ELECTRICITY;    ELECTRONS;    EXCITONS;    FABRICATION;    LEAD SELENIDES;    MANUFACTURING;    NATIONAL RENEWABLE ENERGY LABORATORY;    PHOTONS;    QUANTUM DOTS;    QUANTUM EFFICIENCY;    SOLAR CELLS;    SUN NREL HIGHLIGHT;    EQE;    EXTERNAL QUANTUM EFFICIENCY;    QUANTUM DOT;    QD;    SOLAR CELL;    PV;    Chemical and Material Sciences;    Solar Energy - Photovoltaics;   
DOI  :  10.2172/1031982
RP-ID  :  NREL/FS-5900-53258
PID  :  OSTI ID: 1031982
Others  :  TRN: US201202%%104
美国|英语
来源: SciTech Connect
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【 摘 要 】

A new device that produces and collects multiple electrons per photon could yield inexpensive, high-efficiency photovoltaics. A new device developed through research at the National Renewable Energy Laboratory (NREL) reduces conventional losses in photovoltaic (PV) solar cells, potentially increasing the power conversion efficiency-but not the cost-of the solar cells. Solar cells convert optical energy from the sun into usable electricity; however, almost 50% of the incident energy is lost as heat with present-day technologies. High-efficiency, multi-junction cells reduce this heat loss, but their cost is significantly higher. NREL's new device uses excess energy in solar photons to create extra charges rather than heat. This was achieved using 5-nanometer-diameter quantum dots of lead selenide (PbSe) tightly packed into a film. The researchers chemically treated the film, and then fabricated a device that yielded an external quantum efficiency (number of electrons produced per incident photon) exceeding 100%, a value beyond that of all current solar cells for any incident photon. Quantum dots are known to efficiently generate multiple excitons (a bound electron-hole pair) per absorbed high-energy photon, and this device definitively demonstrates the collection of multiple electrons per photon in a PV cell. The internal quantum efficiency corrects for photons that are not absorbed in the photoactive layer and shows that the PbSe film generates 30% to 40% more electrons in the high-energy spectral region than is possible with a conventional solar cell. While the unoptimized overall power conversion efficiency is still low (less than 5%), the results have important implications for PV because such high quantum efficiency can lead to more electrical current produced than possible using present technologies. Furthermore, this fabrication is also amenable to inexpensive, high-throughput roll-to-roll manufacturing.

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