Jan Shayan Tariq, Noman Muhammad
U.S.-Pakistan Center for Advanced Studies in Energy, University of Engineering and Technology, Peshawar, Pakistan.
Department of Energy Engineering Technology, University of Technology, Nowshera, Pakistan.
Sci Rep. 2023 Nov 3;13(1):19015. doi: 10.1038/s41598-023-46482-5.
The allure of perovskite solar cells (PSCs), which has captivated the interest of researchers, lies in their versatility to incorporate a wide range of materials within the cell's structure. The compatibility of these materials plays a vital role in the performance enhancement of the PSC. In this study, multiple perovskite materials including FAPbI, MAGeI and MASnI are numerically modelled along with the recently emerged kesterite (CBTS, CMTS, and CZTS) and zinc-based (ZnO and CdZnS) charge transport materials. To fully explore the potential of PSCs and comprehend the interplay among these materials, a total of 18 PSC structures are modeled from different material combinations. The impact of band gap, electron affinity, absorption, band alignment, band offset, electric field, recombination rate, thickness, defects, and work function were analyzed in detail through a systematic approach. The reasons for varying performance of different PSCs are also identified. Based on the simulated results, the most suitable charge transport materials are CdZnS/CMTS for FAPbI producing a power conversion efficiency (PCE) of 22.05%, ZnO/CZTS for MAGeI with PCE of 17.28% and ZnO/CBTS for MASnI with a PCE of 24.17%.
钙钛矿太阳能电池(PSC)的魅力吸引了研究人员的关注,其魅力在于它能够在电池结构中融入多种材料。这些材料的兼容性对PSC的性能提升起着至关重要的作用。在本研究中,对多种钙钛矿材料(包括FAPbI、MAGeI和MASnI)以及最近出现的硫系化合物(CBTS、CMTS和CZTS)和锌基(ZnO和CdZnS)电荷传输材料进行了数值模拟。为了充分探索PSC的潜力并理解这些材料之间的相互作用,从不同的材料组合中建立了总共18种PSC结构的模型。通过系统的方法详细分析了带隙、电子亲和能、吸收、能带排列、能带偏移、电场、复合率、厚度、缺陷和功函数的影响。还确定了不同PSC性能各异的原因。基于模拟结果,对于FAPbI,最合适的电荷传输材料是CdZnS/CMTS,功率转换效率(PCE)为22.05%;对于MAGeI,是ZnO/CZTS,PCE为17.28%;对于MASnI,是ZnO/CBTS,PCE为24.17%。