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High-Performance GaAs Nanowire Solar Cells for Flexible and Transparent Photovoltaics

机译:用于柔性和透明光伏的高性能GaAs纳米线太阳能电池

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Among many available photovoltaic technologies at present, gallium arsenide (GaAs) is one of the recognized leaders for performance and reliability; however, it is still a great challenge to achieve cost-effective GaAs solar cells for smart systems such as transparent and flexible photovoltaics. In this study, highly crystalline long GaAs nanowires (NWs) with minimal crystal defects are synthesized economically by chemical vapor deposition and configured into novel Schottky photovoltaic structures by simply using asymmetric Au-Al contacts. Without any doping profiles such as p-n junction and complicated coaxial junction structures, the single NW Schottky device shows a record high apparent energy conversion efficiency of 16% under air mass 1.5 global illumination by normalizing to the projection area of the NW. The corresponding photovoltaic output can be further enhanced by connecting individual cells in series and in parallel as well as by fabricating NW array solar cells via contact printing showing an overall efficiency of 1.6%. Importantly, these Schottky cells can be easily integrated on the glass and plastic substrates for transparent and flexible photovoltaics, which explicitly demonstrate the outstanding versatility and promising perspective of these GaAs NW Schottky photovoltaics for next-generation smart solar energy harvesting devices.
机译:目前,在许多可用的光伏技术中,砷化镓(GaAs)是公认的性能和可靠性领先者之一;然而,为诸如透明和柔性光伏之类的智能系统实现具有成本效益的GaAs太阳能电池仍然是一个巨大的挑战。在这项研究中,通过化学气相沉积经济地合成了具有最小晶体缺陷的高结晶长GaAs纳米线(NW),并通过简单地使用非对称Au-Al接触将其配置为新颖的肖特基光伏结构。在没有任何掺杂轮廓(例如p-n结和复杂的同轴结结构)的情况下,单个NW肖特基器件通过对NW的投影面积进行归一化,在空气质量1.5全局照明下显示出创纪录的16%的高视在能量转换效率。通过串联和并联连接单个电池以及通过总印刷效率为1.6%的接触印刷来制造NW阵列太阳能电池,可以进一步提高相应的光伏输出。重要的是,这些肖特基电池可以很容易地集成在玻璃和塑料基板上,用于透明和柔性光伏,这清楚地展示了这些GaAs NW肖特基光伏电池的杰出多功能性和前景广阔的前景,可用于下一代智能太阳能收集设备。

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