Qingdao Institute of Bioenergy and Bioprocess Technology , Chinese Academy of Sciences , Qingdao , Shandong 266101 , P. R. China.
Department of Chemistry, College of Science , Shantou University , Shantou 515063 , P. R. China.
Inorg Chem. 2018 Jul 16;57(14):8375-8381. doi: 10.1021/acs.inorgchem.8b01030. Epub 2018 Jun 28.
Ternary CuZnS nanocrystals (NCs) are synthesized via a facile, scalable, noninjection method at low temperatures for the first time, wherein sodium ascorbate plays the dual roles of reducing agent and capping ligand in the preparation process. These NCs can be dispersed well in a polar solvent like dimethyl sulfoxide, and the average size is ∼4 nm as measured by transmission electron microscopy. The results of X-ray diffraction and X-ray photoelectron spectroscopy indicate that the crystal structure of CuZnS NCs displays covellite CuS-like structure and the Zn element partly occupies the Cu position. Also, the crystal structure of CuZnS NCs is completely converted from a covellite CuS structure into a digenite CuS structure when the NCs are treated above 350 °C. Moreover, CuZnS NCs demonstrate favorable hole transport properties. When it is employed in MAPbI-based perovskite solar cells as a hole transport layer, a peak power conversion efficiency of 18.3% is achieved. Simultaneously, the devices based on CuZnS exhibit a remarkably reduced J-V hysteresis. The results indicate that CuZnS is a promising hole transport layer for enhancing perovskite solar cell performance and presents great potential for optoelectronic applications, as well.
三元铜锌硫化物(CuZnS)纳米晶体(NCs)首次通过一种简便、可扩展、非注射的低温方法合成,其中抗坏血酸钠在制备过程中起还原剂和封端配体的双重作用。这些 NCs 可以很好地分散在像二甲基亚砜这样的极性溶剂中,通过透射电子显微镜测量,平均尺寸约为 4nm。X 射线衍射和 X 射线光电子能谱的结果表明,CuZnS NCs 的晶体结构呈现蓝辉铜矿 CuS 类似的结构,并且 Zn 元素部分占据 Cu 位置。此外,当 NCs 处理温度高于 350°C 时,CuZnS NCs 的晶体结构完全从蓝辉铜矿 CuS 结构转变为辉铜矿 CuS 结构。此外,CuZnS NCs 表现出良好的空穴传输性能。当它作为空穴传输层应用于基于 MAPbI 的钙钛矿太阳能电池中时,可实现 18.3%的峰值功率转换效率。同时,基于 CuZnS 的器件表现出显著降低的 J-V 滞后。结果表明,CuZnS 是一种有前途的空穴传输层,可以提高钙钛矿太阳能电池的性能,并且在光电应用方面也具有很大的潜力。