钙钛矿(结构)
光伏
光伏系统
材料科学
纳米技术
卤化物
制作
可扩展性
钥匙(锁)
接口(物质)
热稳定性
相(物质)
软件部署
工程物理
能量转换效率
光电子学
计算机科学
介孔材料
理论(学习稳定性)
双功能
纳米材料
集中太阳能
化学稳定性
太阳能
互连
颠覆性技术
作者
Anil Kumar Astakala,Seul‐Yi Lee,Jagadis Gautam,Kedar Bahadur Thapa,Insik In,S.J. Lee,Soo‐Jin Park
标识
DOI:10.1016/j.apmate.2025.100354
摘要
Inorganic perovskite solar cells (IPSCs) offer superior thermal stability and reduced toxicity compared with hybrid perovskites, yet their practical deployment is still restricted by phase instability, interfacial degradation, and limited power conversion efficiency (PCE) under operational conditions. This review systematically outlines and connects strategies for advancing cesium lead halide (CsPbX3) systems, emphasizing three complementary directions to build a coherent narrative accessible to both experts and new readers. First, compositional tuning through halide alloying, cation substitution, and controlled doping has been shown to stabilize the black perovskite phase and suppress defect formation. Second, interfacial engineering, including surface passivation, additive-assisted nucleation, and protective layers, has emerged as a key approach to reduce non-radiative recombination and improve environmental resilience. Third, scalable fabrication routes such as solution processing, vapor deposition, and nanostructured templating are assessed for their impact on crystallinity, film uniformity, and large-area device integration. Looking ahead, future research must prioritize lead-free alternatives, low-temperature processing compatible with flexible substrates, and predictive modeling for interface optimization. By consolidating cross-disciplinary insights, this review provides a coherent roadmap to accelerate the translation of IPSCs from laboratory studies to practical, sustainable photovoltaic technologies.
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