Jagadamma Lethy Krishnan, Wang Shaoyang
Energy Harvesting Research Group, SUPA, School of Physics and Astronomy, St. Andrews, Scotland, United Kingdom.
Front Chem. 2021 Mar 26;9:632021. doi: 10.3389/fchem.2021.632021. eCollection 2021.
Indoor photovoltaics (IPVs) are receiving great research attention recently due to their projected application in the huge technology field of Internet of Things (IoT). Among the various existing photovoltaic technologies such as silicon, Cadmium Telluride (CdTe), Copper Indium Gallium Selenide (CIGS), organic photovoltaics, and halide perovskites, the latter are identified as the most promising for indoor light harvesting. This suitability is mainly due to its composition tuning adaptability to engineer the bandgap to match the indoor light spectrum and exceptional optoelectronic properties. Here, in this review, we are summarizing the state-of-the-art research efforts on halide perovskite-based indoor photovoltaics, the effect of composition tuning, and the selection of various functional layer and device architecture onto their power conversion efficiency. We also highlight some of the challenges to be addressed before these halide perovskite IPVs are commercialized.
由于室内光伏(IPV)在物联网(IoT)这一庞大技术领域的预期应用,近来受到了广泛的研究关注。在现有的各种光伏技术中,如硅、碲化镉(CdTe)、铜铟镓硒(CIGS)、有机光伏和卤化物钙钛矿,后者被认为是室内光捕获最有前景的材料。这种适用性主要归因于其成分调节的适应性,可设计带隙以匹配室内光谱以及优异的光电特性。在此综述中,我们总结了基于卤化物钙钛矿的室内光伏的最新研究成果、成分调节的影响以及各种功能层和器件结构的选择对其功率转换效率的影响。我们还强调了在这些卤化物钙钛矿IPV商业化之前需要解决的一些挑战。