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Engineering Stable Lead-Free Tin Halide Perovskite Solar Cells: Lessons from Materials Chemistry

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ADVANCED MATERIALS
卷 35, 期 25, 页码 -

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WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202206684

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solar cells; solar energy conversion; tin perovskites; optoelectronics

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Substituting lead with tin in perovskite solar cells is a promising route for developing lead-free devices, but current tin-based cells still face challenges in achieving high efficiency due to oxidation. This review summarizes the evolution and stability improvement approaches of tin-based cells, including composition engineering, additive engineering, and interface engineering. The knowledge gained from studying these properties is also relevant to other devices using tin-based perovskite absorber layers.
Substituting toxic lead with tin (Sn) in perovskite solar cells (PSCs) is the most promising route toward the development of high-efficiency lead-free devices. Despite the encouraging efficiencies of Sn-PSCs, they are still yet to surpass 15% and suffer detrimental oxidation of Sn(II) to Sn(IV). Since their first application in 2014, investigations into the properties of Sn-PSCs have contributed to a growing understanding of the mechanisms, both detrimental and complementary to their stability. This review summarizes the evolution of Sn-PSCs, including early developments to the latest state-of-the-art approaches benefitting the stability of devices. The degradation pathways associated with Sn-PSCs are first outlined, followed by describing how composition engineering (A, B site modifications), additive engineering (oxidation prevention), and interface engineering (passivation strategies) can be employed as different avenues to improve the stability of devices. The knowledge about these properties is also not limited to PSCs and also applicable to other types of devices now employing Sn-based perovskite absorber layers. A detailed analysis of the properties and materials chemistry reveals a clear set of design rules for the development of stable Sn-PSCs. Applying the design strategies highlighted in this review will be essential to further improve both the efficiency and stability of Sn-PSCs.

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