超高宽高比铜纳米线作为染料敏化太阳能电池的透明导电电极

Zhaozhao Zhu, T. Mankowski, A. S. Shikoh, F. Touati, M. Benammar, M. Mansuripur, C. Falco
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引用次数: 1

摘要

我们报道了超高纵横比铜纳米线(CuNW)的合成和基于CuNW的透明导电电极(TCE)的制备,该电极具有高透光率(bbb80 %)和优异的片电阻(Rs <30 Ω/sq)。这些CuNW TCEs随后与掺铝氧化锌(AZO)薄膜涂层或铂薄膜涂层或镍薄膜涂层杂交。我们的混合透明电极可以取代染料敏化太阳能电池(DSSCs)中的氧化铟锡(ITO)薄膜作为阳极或阴极。我们强调了将裸cunw集成到DSSCs中的挑战,并证明了杂交使得太阳能电池集成可行。基于CuNW/ azo的DSSC具有相当好的开路电压(Voc = 720 mV)和短路电流密度(Jsc = 0.96 mA/cm2),与采用类似工艺制备的基于ito的DSSC相当。我们基于CuNW-Ni的DSSCs具有良好的开路电压(Voc = 782 mV)和良好的短路电流(Jsc = 3.96 mA/cm2),光电转换效率约为1.5%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultra-high aspect ratio copper nanowires as transparent conductive electrodes for dye sensitized solar cells
We report the synthesis of ultra-high aspect ratio copper nanowires (CuNW) and fabrication of CuNW-based transparent conductive electrodes (TCE) with high optical transmittance (>80%) and excellent sheet resistance (Rs <30 Ω/sq). These CuNW TCEs are subsequently hybridized with aluminum-doped zinc oxide (AZO) thin-film coatings, or platinum thin film coatings, or nickel thin-film coatings. Our hybrid transparent electrodes can replace indium tin oxide (ITO) films in dye-sensitized solar cells (DSSCs) as either anodes or cathodes. We highlight the challenges of integrating bare CuNWs into DSSCs, and demonstrate that hybridization renders the solar cell integrations feasible. The CuNW/AZO-based DSSCs have reasonably good open-circuit voltage (Voc = 720 mV) and short-circuit current-density (Jsc = 0.96 mA/cm2), which are comparable to what is obtained with an ITO-based DSSC fabricated with a similar process. Our CuNW-Ni based DSSCs exhibit a good open-circuit voltage (Voc = 782 mV) and a decent short-circuit current (Jsc = 3.96 mA/cm2), with roughly 1.5% optical-to-electrical conversion efficiency.
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