Sep 2026· ACS Applied Materials and Interfaces· Vol 18, pp. 51083-51092· 0 citations· 47 references
Medicine
Abstract
Hybrid evaporation-solution processing offers a promising route for high-efficiency perovskite solar cells; however, the dense lead iodide (PbI2) framework leads to competing intercalation and dissolution-recrystallization pathways, resulting in incomplete conversion and limited device performance. Here, we report a kinetic regulation strategy using propylamine hydrochloride (PACl) to control crystallization dynamics in hybrid evaporation-solution perovskite films. We show that PACl slows the initial reaction kinetics, enabling more complete ammonium salt infiltration while promoting an intercalation-dominated conversion pathway. This regulated process suppresses excessive PbI2 dissolution and induces a preferential (100)-oriented perovskite texture, leading to improved film uniformity and crystalline quality. In situ characterization combined with density functional theory calculations reveals that PA+ selectively adsorbs on PbI2 surfaces and forms directional hydrogen bonds, stabilizing the layered framework while modulating interfacial reaction kinetics. The synergy between interfacial kinetic control and structural stabilization enables high-quality crystallization with reduced defect formation. As a result, the optimized devices achieve a high power conversion efficiency of 25.13% and exhibit good operational stability, maintaining performance over 900 h of maximum power point tracking. This work provides fundamental insight into crystallization pathway regulation in hybrid deposition systems and offers a general strategy for fabricating oriented, high-performance perovskite films.
Exact regulation of nucleation and crystallization kinetics is essential for fabricating high-performance perovskite solar cells (PSCs). However, regulating the fast assembly of precursors without incorporating residual impurities presents a significant difficulty. We present an approach of a "transient kinetic modulat...
Aiqing Sun, Wang-Da Li, Chang-Shan Bu et al.· Angewandte Chemie· 0 citations
CsPbI2Br perovskites are promising wide-bandgap absorbers for tandem photovoltaics but are limited by unfavorable film crystallization and high defect densities. Herein, dimethylammonium iodide is introduced as a multifunctional agent to simultaneously regulate crystallization dynamics and modulate A-site composition....
The performance of perovskite solar cells is fundamentally capped by the crystalline quality of perovskite active layers. Conventional solution-processing lacks kinetic control over nucleation, engendering granular heterogeneity, trap-state proliferation and halide phase segregation. Heterogeneous nucleation-induced cr...
Yi-Yang He, Wen-Jing Zhao, S. Liu et al.· Advances in Materials· 0 citations
Water-based perovskite solar cells (W-PSCs) provide a promising route toward reducing the use of hazardous organic solvents during perovskite fabrication. However, their development remains limited by sluggish precursor conversion, incomplete phase transformation, and poor control over film morphology. This review summ...
Unbalanced crystallization kinetics in mixed Sn-Pb perovskite cause film heterogeneity and high defect densities, thereby constraining overall performance and stability, particularly under scalable processing conditions. Here, we investigate nanocrystal-mediated crystallization regulation in ambient-processed, slot-die...
Xiaojing Ci, Altantulga Buyan-Arivjikh, Xiong-Zhuo Jiang et al.· Advancement of science· 0 citations
While perovskite solar cells (PSCs) have achieved significant progress in power conversion efficiency (PCE), their commercialization remains hindered by a critical challenge: irreversible efficiency degradation during device operation, primarily caused by the spontaneous degradation of the perovskite layer. The root of...
Xin-Xuan Yang, Jia-Hui Jin, Xiao-Ye Liu et al.· Small· 0 citations
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