Wang Shifan, Yan Di, Ibarra Michel Jesus, Corletto Alexander, Wibowo Ary Anggara, Balendhran Sivacarendran, Lee Ha Young, Byun Sujeong, Kim Sejeong, Crozier Kenneth B, Sherrell Peter C, Macdonald Daniel, Bullock James
Department of Electrical and Electronic Engineering, University of Melbourne, Melbourne, Victoria 3010, Australia.
School of Engineering, The Australian National University, Canberra, Australian Capital Territory 2601, Australia.
ACS Nano. 2024 Sep 10;18(36):25046-25052. doi: 10.1021/acsnano.4c06525. Epub 2024 Aug 23.
van der Waals (vdW) layered materials have been shown to have excellent optoelectronic properties relevant to photovoltaics. Despite their promise, the demonstrated efficiencies of vdW material solar cells remain low and are seldom supported by statistics or spectral quantum efficiency analysis. In this study, we utilize a p-type WSe absorber, forming a solar cell with a transparent front InO electron contact, and a rear Pd reflector/hole contact. We fabricate multiple devices providing statistics for 10 devices with an average 1 sun conversion efficiency above 5%, among which a champion efficiency of 6.37% is achieved. This is the highest AM 1.5G 1 sun efficiency reported for a vdW material solar cell, with a current density supported by external quantum efficiency analysis. This cell is also shown to have near unity quantum efficiency around λ = 600 nm. This work provides support to vdW materials being considered as serious candidates for future thin-film solar cells.
范德华(vdW)层状材料已被证明具有与光伏相关的优异光电特性。尽管它们前景广阔,但vdW材料太阳能电池已展示出的效率仍然很低,而且很少有统计数据或光谱量子效率分析的支持。在本研究中,我们使用p型WSe吸收体,形成了一个具有透明的InO前表面电子接触以及背面Pd反射器/空穴接触的太阳能电池。我们制造了多个器件,对10个器件进行了统计,其平均1个太阳下的转换效率高于5%,其中获得了6.37%的最佳效率。这是vdW材料太阳能电池所报道的最高AM 1.5G 1个太阳下的效率,其电流密度得到了外部量子效率分析的支持。该电池在λ = 600 nm左右还显示出接近单位量子效率。这项工作为vdW材料被视为未来薄膜太阳能电池的有力候选材料提供了支持。