Correlating Defect Structures and Optical Performance in Bridgman-Grown Cs3Cu2I5 Crystals: A Defect Engineering Approach for Enhanced Blue Emission

Sijia Li, Liang Zhang, Weina Nan, Boru Zhou, Ziang Yin, Tao Wang, Hongwei Yu, Zhanggui Hu, Ning Ye

科研成果: 期刊稿件文章同行评审

摘要

Cs3Cu2I5, a nontoxic broad emitter with exceptional blue-emissive properties, holds great promise for optoelectronic applications. However, achieving large-size, high-quality single crystals with minimal defects remains a critical challenge. We report a defect engineering strategy to optimize the growth of high-quality Cs3Cu2I5 single crystals by systematically controlling the growth parameters and characterizing defects. Using the Bridgman method with precisely controlled molar ratios (CuI/CsI = 39%:61%) and thermal conditions (G = 16 K/cm, v = 0.45 mm/h), we demonstrate that constitutional supercooling-induced eutectic decomposition (L → Cs3Cu2I5 + CsCu2I3) leads to the formation of interlaced inclusions exhibiting a globule-to-lamellar transition morphology. Advanced microstructural and optical characterization revealed that these defect structures induced lattice expansion and competitive photon absorption, reducing the photoluminescence quantum yield by approximately 40% and lowering optical transmittance from 89 to 84%. Our defect-controlled growth approach achieves a 30% higher PLQY compared with conventional methods, establishing critical correlations between growth conditions, defect evolution, and optoelectronic performance in this promising lead-free blue-emitting perovskite system. These findings provide fundamental insights and practical guidelines for developing high-performance perovskite single crystals for advanced optoelectronic applications.

源语言英语
页(从-至)11184-11191
页数8
期刊Inorganic Chemistry
64
22
DOI
出版状态已出版 - 9 6月 2025

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