Boix Pablo P, Agarwala Shweta, Koh Teck Ming, Mathews Nripan, Mhaisalkar Subodh G
†Energy Research Institute at Nanyang Technological University (ERI@N), Research Techno Plaza, X-Frontier Block Level 5, 50 Nanyang Avenue, Singapore 637553, Singapore.
‡School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore.
J Phys Chem Lett. 2015 Mar 5;6(5):898-907. doi: 10.1021/jz502547f. Epub 2015 Feb 26.
Organic-inorganic lead halide based perovskites solar cells are by far the highest efficiency solution-processed solar cells, threatening to challenge thin film and polycrystalline silicon ones. Despite the intense research in this area, concerns surrounding the long-term stability as well as the toxicity of lead in the archetypal perovskite, CH3NH3PbI3, have the potential to derail commercialization. Although the search for Pb-free perovskites have naturally shifted to other transition metal cations and formulations that replace the organic moiety, efficiencies with these substitutions are still substantially lower than those of the Pb-perovskite. The perovskite family offers rich multitudes of crystal structures and substituents with the potential to uncover new and exciting photophysical phenomena that hold the promise of higher solar cell efficiencies. In addressing materials beyond CH3NH3PbI3, this Perspective will discuss a broad palette of elemental substitutions, solid solutions, and multidimensional families that will provide the next fillip toward market viability of the perovskite solar cells.
基于有机-无机铅卤化物的钙钛矿太阳能电池是目前效率最高的溶液处理太阳能电池,有望挑战薄膜和多晶硅太阳能电池。尽管该领域研究热烈,但围绕原型钙钛矿CH3NH3PbI3中铅的长期稳定性以及毒性的担忧,有可能阻碍其商业化进程。虽然寻找无铅钙钛矿的研究自然转向了其他过渡金属阳离子以及取代有机部分的配方,但这些替代物的效率仍远低于含铅钙钛矿。钙钛矿家族具有丰富多样的晶体结构和取代基,有可能发现新的、令人兴奋的光物理现象,从而有望提高太阳能电池效率。在探讨超越CH3NH3PbI3的材料时,本观点将讨论一系列广泛的元素替代、固溶体和多维家族,它们将为钙钛矿太阳能电池的市场可行性提供下一个推动力。