材料科学
制作
纳米技术
能量转换效率
光伏系统
环境污染
太阳能电池
环境友好型
光电子学
环境科学
生态学
医学
生物
病理
替代医学
环境保护
作者
Lin Yuan,Li Yang,Yang Liu,Kunyuan Lu,Guozheng Shi,Xiang Sun,Yong Li,Xinyu Dong,Yuran Xiao,Lizhen Huang,Zeke Liu,Wanli Ma
标识
DOI:10.1002/ange.202416369
摘要
Abstract Silver bismuth sulfide nanocrystals (AgBiS 2 NCs) embody a pioneering heavy‐metal‐free photovoltaic material renowned for its ultrahigh absorption coefficient, offering promising opportunities for advancing the field of ultra‐thin and biocompatible solar cells. Currently, the fabrication of AgBiS 2 NC photovoltaic devices relies on hot‐injection synthesis and subsequent tedious ligand exchange, leading to high production cost, complex processes and environmental pollution. Here, we developed a direct‐synthesis (DS) method without ligand‐exchange for AgBiS 2 NC semiconductive inks, significantly simplifying the material preparation and device fabrication processes. The synthesis cost of AgBiS 2 inks (17.0 $ g −1 ) is over an order of magnitude lower than the traditional method (203.5–275.2 $ g −1 ). Through optimizing synthesis and device structure, a champion power conversion efficiency of 9.32 % was achieved, aligning with the highest reported efficiency (9.17 %) based on ligand‐exchanged methods. In addition, our DS‐AgBiS 2 inks show excellent storage stability for over ten months. More importantly, the life cycle assessment (LCA) indicates drastically reduced energy consumption as well as environmental and human health impact for our strategy. The low‐cost and scalable synthesis approach for AgBiS 2 NC semiconductive inks present a “greener” pathway for the commercial applications of NC optoelectronics.
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