软件部署
光伏
钙钛矿(结构)
光伏系统
串联
纳米技术
可扩展性
钙钛矿太阳能电池
工程物理
材料科学
系统工程
太阳能电池
航天器
计算机科学
太空探索
太阳能
原子层沉积
航空航天工程
工艺工程
捷克先令
系统集成
能量转换效率
工程类
热的
作者
Jiawei Gong,Luke Schneider,Yongtao Liu
标识
DOI:10.1002/adsu.202501343
摘要
ABSTRACT Perovskite solar cells (PSCs) have emerged as a transformative photovoltaic technology, offering high power conversion efficiency (PCE) and the potential for cost‐effective manufacturing. However, stability and large‐scale manufacturing remain critical challenges that must be addressed for widespread adoption. This review provides a roadmap from single‐junction perovskite solar cells to tandem deployment in space. First, material‐level innovations are discussed, including mixed‐cation and low‐dimensional perovskites, transport materials, and additives that improve thermal and structural stability while enhancing efficiency. Then, we examine both established industrial standards and emerging scientific protocols aimed at stabilizing PSCs under operational conditions, including tandem cell integration strategies and encapsulation techniques to mitigate performance degradation. Manufacturing scalability is a focal point, where deposition methods and green solvents are explored to improve large‐area film uniformity and reduce environmental impact. Additionally, the increasing viability of PSCs in extraterrestrial environments is assessed, with emphasis on their performance in space applications, radiation resistance, and flexible lamination methods for deployment in extreme conditions. Progress across materials innovation, device architectures, stability testing protocols, and both terrestrial and extraterrestrial applications collectively drives perovskite photovoltaics toward higher efficiency, stability, and cost‐effectiveness.
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