[1]黄晓锋,祁楷航,杨晨希,等.钙钛矿太阳能电池制备过程中的多尺度调控机制及其对器件性能的影响[J].中国材料进展,2026,45(10):060-69.
 HUANG Xiaofeng,QI Kaihang,YANG Chenxi,et al.Multiscale Control Mechanisms in Perovskite Solar Cell Fabrication and Their Impact on Device Performance[J].MATERIALS CHINA,2026,45(10):060-69.
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钙钛矿太阳能电池制备过程中的多尺度调控机制及其对器件性能的影响()

中国材料进展[ISSN:1674-3962/CN:61-1473/TG]

卷:
45
期数:
2026年10
页码:
060-69
栏目:
出版日期:
2026-09-30

文章信息/Info

Title:
Multiscale Control Mechanisms in Perovskite Solar Cell Fabrication and Their Impact on Device Performance
作者:
黄晓锋祁楷航杨晨希王奕乔
1.香港城市大学,香港 九龙 999077 2.西北工业大学,陕西 西安 710072
Author(s):
HUANG Xiaofeng QI Kaihang YANG Chenxi WANG Yiqiao
1 City University of Hong Kong, Kowloon, Hong Kong 999077, China 2 Northwestern Polytechnical University, Xi’an 710072, Shaanxi,China
关键词:
钙钛矿太阳能电池制备工艺薄膜结晶界面工程大面积组件稳定性
Keywords:
perovskite solar cells fabrication process thin-film crystallization interface engineering large-area components stability
文献标志码:
A
摘要:
钙钛矿太阳能电池的光电转换效率与长期稳定性高度依赖于制备过程中多尺度因素的协同调控。本文系统综述了从钙钛矿吸光层及各功能层前驱体体系到器件整体结构等关键环节对器件性能的影响机制,重点分析了原材料分子设计、成膜动力学、薄膜微观结构、界面与电荷传输层工程、大面积组件制备与系统集成之间的内在关联。研究表明,前驱体体系通过调控结晶路径、相演化过程与缺陷分布,为高质量钙钛矿薄膜的形成奠定基础;成膜过程中的反溶剂工程、添加剂调控与退火条件共同决定晶粒尺寸、取向、覆盖均匀性及残余应力,从而影响载流子输运、陷阱辅助复合和器件迟滞行为。界面钝化与传输层能级匹配能够有效降低非辐射复合损失,改善载流子选择性提取,进而提升开路电压、短路电流密度与填充因子。与此同时,n-i-p 与 p-i-n 器件结构在制备工艺兼容性、界面稳定性及大面积放大方面表现出不同优势与挑战;在组件化与系统集成过程中,薄膜均匀性、串联互连损耗、缺陷累积、环境稳定性及封装可靠性共同决定了钙钛矿光伏的产业化转化潜力。本文进一步归纳了从实验室小面积器件向大面积模块过渡时所面临的关键瓶颈,包括界面复合、离子迁移、相分离、模块互连损耗及封装可靠性等。未来研究应聚焦于材料—成膜—界面—器件—组件的多尺度协同优化,发展原位/工况表征技术与机器学习辅助的工艺筛选方法,并构建统一、可比、可追溯的稳定性评价体系。
Abstract:
The power conversion efficiency and long-term stability of perovskite solar cells are highly dependent on the synergistic regulation of multiscale factors during the fabrication process. This review systematically summarizes the mechanisms by which key factors, ranging from precursor systems for the perovskite absorber and functional layers to overall device architectures, influence device performance. Particular emphasis is placed on the intrinsic correlations among molecular design of raw materials, film-formation dynamics, thin-film microstructure, interface and charge-transport-layer engineering, large-area module fabrication, and system integration. Current studies indicate that precursor systems establish the foundation for high-quality perovskite films by regulating crystallization pathways, phase evolution, and defect distributions. During film formation, antisolvent engineering, additive regulation, and annealing conditions collectively determine grain size, crystallographic orientation, film coverage uniformity, and residual stress, thereby affecting charge-carrier transport, trap-assisted recombination, and device hysteresis.Interface passivation and energy-level alignment of transport layers can effectively suppress non-radiative recombination losses and improve selective charge extraction, leading to enhanced open-circuit voltage, short-circuit current density, and fill factor. Meanwhile, n-i-p and p-i-n device architectures exhibit distinct advantages and challenges in terms of fabrication compatibility, interfacial stability, and large-area scalability. During module fabrication and system integration, film uniformity, series interconnection losses, defect accumulation, environmental stability, and encapsulation reliability jointly determine the industrialization potential of perovskite solar cells. This review further summarizes the major bottlenecks encountered in the transition from small-area laboratory devices to large-area modules, including interfacial recombination, ion migration, phase segregation, module interconnection losses, and encapsulation reliability. Future research should focus on multiscale synergistic optimization across materials, film formation,interfaces, devices, and modules; the development of in situ and operando characterization techniques; machine-learning-assisted process screening; and the establishment of unified, comparable, and traceable stability evaluation protocols.
更新日期/Last Update: 2026-08-31