材料科学
钙钛矿(结构)
成核
结晶
晶界
纳米技术
卤化物
串联
Crystal(编程语言)
晶体生长
相(物质)
模板
化学工程
科技与社会
烧结
能量转换效率
作者
Yiyang He,Wenjing Zhao,Shengzhong (Frank) Liu,Dong Yang
摘要
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 crystallization circumvents these bottlenecks by deploying extrinsic seeds or templates to engineer nucleation sites and orchestrate crystallization trajectories. This review systematically examines recent advances in this strategy. It begins by explaining the mechanisms from thermodynamic, lattice-matching and solution-chemistry perspectives, emphasizing the reduction of nucleation barriers and the guided alignment of crystal orientation. We then categorize the functional material systems, like perovskite seeds, low-dimensional materials and organic molecules. The discussion extends to the significant performance improvements achieved by this strategy in single-junction, wide-bandgap and tandem solar cells, notably in enhanced efficiency, suppressed defects and reinforced stability. Relate mechanisms for stability improvement, like grain boundary reduction, ion migration inhibition and strain release, are also discussed. Finally, we outline prospective research trajectories to provide theoretical frameworks for advancing high-efficiency and stable perovskite photovoltaics.
科研通智能强力驱动
Strongly Powered by AbleSci AI