Leschkies Kurtis S, Divakar Ramachandran, Basu Joysurya, Enache-Pommer Emil, Boercker Janice E, Carter C Barry, Kortshagen Uwe R, Norris David J, Aydil Eray S
Department of Chemical Engineering & Materials Science, University of Minnesota, 421 Washington Avenue SE, Minneapolis, Minnesota 55455, USA.
Nano Lett. 2007 Jun;7(6):1793-8. doi: 10.1021/nl070430o. Epub 2007 May 16.
We combine CdSe semiconductor nanocrystals (or quantum dots) and single-crystal ZnO nanowires to demonstrate a new type of quantum-dot-sensitized solar cell. An array of ZnO nanowires was grown vertically from a fluorine-doped tin oxide conducting substrate. CdSe quantum dots, capped with mercaptopropionic acid, were attached to the surface of the nanowires. When illuminated with visible light, the excited CdSe quantum dots injected electrons across the quantum dot-nanowire interface. The morphology of the nanowires then provided the photoinjected electrons with a direct electrical pathway to the photoanode. With a liquid electrolyte as the hole transport medium, quantum-dot-sensitized nanowire solar cells exhibited short-circuit currents ranging from 1 to 2 mA/cm2 and open-circuit voltages of 0.5-0.6 V when illuminated with 100 mW/cm2 simulated AM1.5 spectrum. Internal quantum efficiencies as high as 50-60% were also obtained.
我们将硒化镉半导体纳米晶体(或量子点)与单晶氧化锌纳米线相结合,展示了一种新型的量子点敏化太阳能电池。在掺氟氧化锡导电衬底上垂直生长了氧化锌纳米线阵列。用巯基丙酸包覆的硒化镉量子点附着在纳米线表面。当用可见光照射时,被激发的硒化镉量子点通过量子点-纳米线界面注入电子。纳米线的形态随后为光注入电子提供了一条通向光阳极的直接导电路径。以液体电解质作为空穴传输介质,当用100 mW/cm²模拟AM1.5光谱照射时,量子点敏化纳米线太阳能电池的短路电流范围为1至2 mA/cm²,开路电压为0.5 - 0.6 V。还获得了高达50 - 60%的内量子效率。