光伏系统
材料科学
光电子学
制作
异质结
化学气相沉积
太阳能电池
能量转换效率
混合太阳能电池
硅
半导体
工程物理
量子点太阳电池
纳米技术
聚合物太阳能电池
量子效率
太阳能
宽禁带半导体
合金
带隙
过程(计算)
工作(物理)
可再生能源
光伏
量子点
作者
Driss Mouloua,Ahmed Kotbi,Nitul Rajput,Miguel Beruete,Miguel Navarro‐Cia,Bouchra Asbani,Michael Lejeune,M. El Marssi,M. M. El Khakani,Mustapha Jouiad
标识
DOI:10.1002/adsu.202501304
摘要
ABSTRACT The growing demand for efficient, scalable, and lightweight photovoltaic (PV) technologies has intensified interest in WS 2 and MoS 2 ‐based devices. Despite notable advances, achieving simultaneously high performance and long‐term operational stability remains a key barrier to broader adoption. Here, we address this challenge by fabricating p–n heterojunction solar cells through a single‐step chemical vapor deposition process that directly deposits WS 2 , MoS 2 , and their alloy MoWS 2 onto p‐type silicon substrates. The MoWS 2 alloy exhibits a reduced bandgap and enhanced optoelectronic properties, which translate into substantially improved PV output and device robustness. The MoWS 2 ‐based solar cell achieves a power conversion efficiency of 5.8%, outperforming the WS 2 and MoS 2 counterparts, which reach 1.12% and 3.6%, respectively. In addition, MoWS 2 displays markedly enhanced light‐harvesting capability, with an external quantum efficiency of 80%, compared to 30% for WS 2 and 50% for MoS 2 . Stability assessments further demonstrate that MoWS 2 retains its performance over a 30‐day test period, confirming its superior long‐term durability. By establishing the viability of MoWS 2 as a high‐potential photoactive material for lightweight PVs, this work sets the stage for future research and paves the way toward practical implementation of alloy‐engineered 2D semiconductor solar technologies.
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