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ZnSe nanoribbon/Si nanowire p-n heterojunction arrays and their photovoltaic application with graphene transparent electrodes

机译:ZnSe纳米带/ Si纳米线p-n异质结阵列及其在石墨烯透明电极上的光伏应用

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摘要

The narrow indirect bandgap of Si hinders the full absorption and utilization of the solar light. Energy band engineering to the Si based photovoltaic devices is essential to address this problem. Here we report the fabrication of ZnSe nanoribbon (ZnSeNR)/Si nanowire (SiNW) p-n heterojunction arrays by directly growing or simply drop-casting the p-type ZnSeNRs on highly aligned n-type SiNW arrays. Phosphorus (P) was used as dopant to achieve robust p-type doping in the ZnSe nanostructures with a hole concentration as high as 6.5 × 10~(18) cm~(-3). Thanks to the matched bandgap and the light trapping arising from the one-dimensional (ID) array structure, the heterojunction arrays exhibited improved light absorption, particularly in the blue/UV wavelength range. Moreover, by taking advantage of the ohmic contact between graphene and p-ZnSeNR, heterojunction array solar cells with graphene transparent electrode were fabricated, giving rise to a power conversion efficiency of ~0.78% under AM 1.5G illumination. It was found that the surface passivation to the SiNW array played an important role in determining the device performance; an efficiency up to 2.27% was obtained after surface modification with methyl groups. Our results demonstrate the heterojunction arrays, together with the graphene transparent electrodes, could be promising candidates for high-performance and low-cost photovoltaic applications.
机译:Si的窄的间接带隙阻碍了太阳光的充分吸收和利用。硅基光伏器件的能带工程对解决该问题至关重要。在这里,我们报告了通过在高度对齐的n型SiNW阵列上直接生长或简单地将p型ZnSeNRs抛铸而成的ZnSe纳米带(ZnSeNR)/ Si纳米线(SiNW)p-n异质结阵列的制造。磷(P)被用作掺杂剂以实现ZnSe纳米结构中的强p型掺杂,其空穴浓度高达6.5×10〜(18)cm〜(-3)。由于匹配的带隙和由一维(ID)阵列结构引起的光捕获,异质结阵列显示出改善的光吸收,特别是在蓝/紫外波长范围内。此外,通过利用石墨烯和p-ZnSeNR之间的欧姆接触,制造了具有石墨烯透明电极的异质结阵列太阳能电池,在AM 1.5G照明下,功率转换效率达到〜0.78%。结果发现,SiNW阵列的表面钝化在确定器件性能方面起着重要作用。用甲基表面改性后,效率高达2.27%。我们的结果表明,异质结阵列与石墨烯透明电极一起,有望成为高性能和低成本光伏应用的有希望的候选者。

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