Strain regulation by interface engineering in perovskite solar cells
Регулирование деформаций посредством инженерии интерфейсов в перовскитных солнечных элементах
2025-09-26
SCID: 54.1/mm6zrnpc
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interface engineeringion migrationoperational stabilityperovskite solar cellsstrain regulation
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Abstract (AI)
Perovskite solar cells (PSCs) have garnered attention for their high efficiency and low production costs. However, long-term operational stability remains a significant challenge due to strain-induced degradation that impacts the structural integrity and performance of the perovskite layer. Strain, arising from factors such as lattice mismatch between layers, thermal expansion during fabrication, and external mechanical forces, can induce structural defects, accelerate ion migration and further reduce the operational lifespan of devices. Research has shown that strategies such as doping, additive engineering, optimization of annealing processes, and interface modification can effectively relieve the residual strain produced in the fabrication process of perovskite film, thereby enhancing the overall performance of the device. Among them, interface engineering has proven to be a key strategy for regulating strain and accordingly enhancing device stability. This article provides a comprehensive overview of recent advances in interface engineering approaches aimed at strain regulation in PSCs. The role of interface design with strain regulation in enhancing crystallinity, reducing defect density, and improving long-term performance is discussed in details, offering insights into future strategies for improving the stability and efficiency of perovskite-based photovoltaic devices.
Key Findings
1
Interface engineering contributes to improved long-term operational stability and efficiency of perovskite solar cells.
2
Interface engineering is identified as a key strategy for relieving fabrication-induced residual strain in perovskite films.
3
Strain from lattice mismatch, thermal expansion, and mechanical forces induces defects and ion migration, degrading perovskite solar-cell stability and performance.
4
Strain-regulating interface designs can improve perovskite crystallinity and reduce defect density.
5
The review highlights interface modification alongside doping, additive engineering, and annealing optimization as approaches for mitigating strain-related degradation.
Research Object
perovskite solar cells (PSCs)
Research Subject
interface-engineering strategies for regulating strain and their effects on crystallinity, defect density, operational stability, and performance
Publication Details
Publication Date
2025-09-26
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