采用高压自催化工艺制备的新型一维范德华SbSeI微柱状太阳能电池

Ivan Cano-Prades, Alejandro Navarro-Güell, S. Giraldo, J. Puigdollers, M. Placidi, E. Saucedo
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引用次数: 0

摘要

新兴的一维范德华钴卤化物半导体由于其独特的结构、电学和光学特性而引起了人们的广泛关注。特别是,易于形成高结晶纳米线的混合钴卤化物化合物SbSeI,其效率超过4%,带隙为1.80 eV,合成温度低于300℃。这些特性非常有趣,因为它可能在未来的串联太阳能电池概念中得到应用。在本研究中,以Sb2Se3为碘源,采用一种基于高压下Sb2Se3层选择性碘化的创新工艺制备了SbSeI微柱状太阳能电池。研究了温度、时间和压力等退火参数,并对吸收剂进行了完整的形态、结构和成分表征。在250℃以上的退火温度下,观察到Sb2Se3薄膜自催化固-液-气转变成微柱状SbSeI的过程。通过XRD和TEM分析,得到了高度结晶的微柱状结构,其尺寸与退火温度、时间和压力有很大关系。提取的活化能表明,Sb2Se3在碘气氛下分解过程中释放出液态硒,使得SbSeI微柱的形成速度非常快。第一个太阳能电池原型是使用标准的薄膜太阳能电池衬底结构制造的,展示了开路电压高于550 mV,转换效率接近1%的设备,目前由于前触点覆盖不足,短路电流和填充系数较低,限制了这些设备。最后,对SbSeI材料和太阳能电池器件进行了全面的分析,并提出了控制微柱尺寸和方向的策略,以及对前接触界面的改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Novel 1D van der Waals SbSeI micro-columnar solar cells by a self-catalyzed high pressure process
Emerging 1D van der Waals chalco-halide semiconductors are attracting a lot of interest as photovoltaic absorbers, due to their unique structural, electrical and optical properties. In particular, the mixed chalco-halide compound SbSeI, that tends to easily form highly crystalline nanowires, have demonstrated efficiencies exceeding 4%, with a bandgap of 1.80 eV, and a synthesis temperature below 300°C. These properties are very interesting for its possible future application in tandem solar cells concepts among others. In this work, SbSeI micro-columnar solar cells are obtained by an innovative process based on the selective iodination of Sb2Se3 layers at high pressures, by using SbI3 as iodine source. Annealing parameters such as temperature, time and pressure are investigated, and a complete morphological, structural and compositional characterization of the absorbers is performed. We observe a self-catalyzed solid-liquid-vapor transformation process of Sb2Se3 thin films into micro-columnar SbSeI at annealing temperatures above 250°C. Highly crystalline micro-columnar structures are obtained as it is demonstrated by XRD and TEM analysis, which sizes strongly depends on the annealing temperature, time and pressure. The extracted activation energy of the processes suggests that the SbSeI micro-columns are formed very fast thanks to the release of liquid Se during the decomposition of Sb2Se3 under iodine atmosphere. First solar cell prototypes were fabricated using standard thin film solar cell substrate configuration, demonstrating devices with an open-circuit-voltage higher than 550 mV and conversion efficiencies close to 1%, which are currently limited by the low short-circuit current and fill factor, due to the deficient coverage of the front contact. Finally, a complete analysis of the SbSeI materials and solar cell devices will be presented, together with strategies to control de size and orientation of the micro-columns, and the improvement of the front contact interfaces.
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