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用于无网格和柔性晶体硅异质结太阳能电池的、具有顶部亚10纳米厚银膜的MoOₓ空穴收集能力大大增强。

Greatly enhanced hole collection of MoO with top sub-10 nm thick silver films for gridless and flexible crystalline silicon heterojunction solar cells.

作者信息

Lei Qiyun, Xu Xinan, Lu Na, Yang Liu, He Sailing

机构信息

Centre for Optical and Electromagnetic Research, National Engineering Research Center for Optical Instruments, College of Optical Science and Engineering, Zhejiang University Hangzhou 310058 China

Ningbo Research Institute, Zhejiang University Ningbo 315100 China.

出版信息

RSC Adv. 2022 Aug 3;12(33):21482-21492. doi: 10.1039/d2ra01512a. eCollection 2022 Jul 21.

Abstract

Greatly enhanced hole collection of MoO is demonstrated experimentally with a top sub-10 nm thick Ag film, allowing for an efficient dopant-free contacted crystalline silicon (c-Si) heterojunction solar cell without a front grid electrode. With the removal of shadows induced by the front grid electrode, the gridless solar cell with the MoO /Ag hole-selective contact (HSC) shows an increment of ∼8% in its power conversion efficiency (PCE) due to the greatly improved short-circuit current density ( ) as well as the almost undiminished fill factor (FF) and open-circuit voltage ( ), while the gridless solar cells with the conventional MoO /ITO and pure MoO HSCs exhibit ∼20% and ∼43% degradations in PCE due to the overwhelming decrease in their FF and , respectively. Through systematic characterizations and analyses, it is found that the ultrathin Ag film (more conductive than ITO) provides an additional channel for photogenerated holes to transport on MoO , contributing to the great enhancement in the hole collection and the great suppression of the shunt loss in the gridless solar cells. A 50 μm thick gridless c-Si heterojunction solar cell with the MoO /Ag HSC is 75% thinner but is 86% efficient compared to its 200 μm thick counterpart (while the 50 μm thick gridless solar cell with the MoO /ITO HSC is much less efficient). It is over 82% efficient after being bent to a curvature radius as small as 4 mm, also showing superior mechanical flexibility to its counterpart with the MoO /ITO HSC. Our MoO /Ag double-layer HSC can be easily fabricated through thermal evaporation without breaking the vacuum, saving both the time and cost of the fabrication of the whole device. Therefore, this work provides a guide for the design of efficient HSCs for high-efficiency, low-cost, and flexible solar cells.

摘要

实验证明,在顶部亚10纳米厚的银膜的情况下,MoO₃的空穴收集能力大大增强,这使得无掺杂剂接触的晶体硅(c-Si)异质结太阳能电池无需前栅电极即可实现高效运行。由于去除了前栅电极引起的阴影,具有MoO₃/Ag空穴选择性接触(HSC)的无栅太阳能电池的功率转换效率(PCE)提高了约8%,这得益于短路电流密度(Jsc)的显著提高以及填充因子(FF)和开路电压(Voc)几乎未降低。而具有传统MoO₃/ITO和纯MoO₃ HSC的无栅太阳能电池,由于其FF和Jsc的大幅下降,PCE分别下降了约20%和约43%。通过系统的表征和分析发现,超薄银膜(比ITO导电性更强)为光生空穴在MoO₃上传输提供了额外通道,有助于无栅太阳能电池中空穴收集的显著增强和分流损耗的极大抑制。与200微米厚的同类产品相比,具有MoO₃/Ag HSC的50微米厚无栅c-Si异质结太阳能电池薄了75%,但效率提高了86%(而具有MoO₃/ITO HSC的50微米厚无栅太阳能电池效率要低得多)。在弯曲到曲率半径小至4毫米后,其效率仍超过82%,也显示出比具有MoO₃/ITO HSC的同类产品更优异的机械柔韧性。我们的MoO₃/Ag双层HSC可以通过热蒸发轻松制备,无需打破真空,节省了整个器件制造的时间和成本。因此,这项工作为高效、低成本和柔性太阳能电池的高效HSC设计提供了指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/89ea/9346987/3d268c026d4b/d2ra01512a-f1.jpg

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