硫系化合物
吸光度
材料科学
钙钛矿(结构)
退火(玻璃)
吸收光谱法
吸收(声学)
卤化物
带隙
氧化物
吸收边
杂质
化学
无机化学
化学工程
光电子学
光学
冶金
有机化学
复合材料
工程类
物理
色谱法
作者
Jie Xu,Fan Yang,Weimin Tian,Ye Li,Yuewen Zhang,Yongzhi Tian,Yanbing Han,Zhifeng Shi
标识
DOI:10.1016/j.jssc.2021.122872
摘要
Recently, chalcogenide perovskite BaZrS3 has been proposed as one of the most promising absorption materials due to its high absorption and excellent carrier transport properties comparable with lead-halide perovskites, as well as its good stability. However, the dependence of light absorption abilities on the synthesis and post-processing conditions of BaZrS3 is still ambiguous. In this work,an improved sulfurization experimental technique was introduced and the conversion rate was proposed as an indicator of the sulfurization level. Then, a series of barium zirconium oxysulfide powders were prepared to investigate the influences of sulfurization level on their structural and absorption properties. Besides, the thermal stability, structures and absorption spectra of BaZrS3 under different post-annealing conditions were compared and discussed. The stronger light absorption was observed under moderate rather than fully sulfurized samples. The structures of BaZrS3 remained unchanged even at temperatures as high as 400 °C in the air or even 700 °C at low pressure of 10−1 Pa. Post-annealing in the air was helpful to improve the absorbance of BaZrS3, probably by introducing oxide related states in the band gap. In summary, oxide impurities that inevitably and commonly exist in BaZrS3 may not be a serious issue, but can be helpful to get a higher absorbance. The above findings confirm the effectiveness of sulfurization strategy to enhance the light absorption ability of BaZrS3, highlighting the promising prospects of such stable and non-toxic chalcogenide perovskite into practical photovoltaic devices.
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