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In Situ Defect Passivation with Silica Oligomer for Enhanced Performance and Stability of Perovskite Solar Cells

机译:原位缺陷钝化与二氧化硅低聚物,以提高钙钛矿太阳能电池的性能和稳定性

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摘要

Perovskite solar cells (PVSCs) have achieved excellent power conversion efficiency (PCE) but still suffer from instability issues. Defect passivation is an important route to simultaneously increase the efficiency and stability of PVSCs. Here, a strategy of incorporating silica oligomer in perovskite films for surface and grain boundary defect passivation is reported. Silica oligomer passivation agent (PA) is in situ formed through hydrolysis and condensation reaction of tetraethyl orthosilicate additive in perovskite precursor. The passivation mechanism is elucidated by density functional theory calculation, revealing stable chelating interaction and hydrogen bond interaction between PA and perovskite. Spectroscopic and electrical characterizations demonstrate that silica oligomer can enlarge grain sizes, prolong carrier lifetime, enhance charge carrier dynamics, and reduce trap state densities in perovskite films. Planar PVSCs with passivation achieve a highly improved PCE of 19.64% with a stabilized efficiency of 18.81%. More importantly, unencapsulated perovskite devices with passivation retain nearly 90% of original efficiency after 1000 h storage under ambient condition and sustained 87% of initial performance after high-temperature (120 degrees C) thermal accelerated aging, showing highly enhanced moisture and thermal stability. Therefore, the present study provides a pathway to the future design and optimization of PVSCs with higher efficiency and greater stability.
机译:Perovskite太阳能电池(PVSCs)实现了出色的功率转换效率(PCCE),但仍然遭受不稳定问题。缺陷钝化是同时提高PVSC的效率和稳定性的重要路径。这里,报道了一种掺入钙钛矿膜的植物和晶界缺陷钝化掺入二氧化硅低聚物的策略。二氧化硅低聚物钝化剂(PA)原位通过钙钛矿前体中四乙基外硅酸酯添加剂的水解和缩合反应形成。通过密度函数理论计算阐明钝化机制,揭示了PA和Perovskite之间的稳定螯合相互作用和氢键相互作用。光谱和电学特性表明,二氧化硅低聚物可以扩大晶粒尺寸,延长载体寿命,增强电荷载体动力学,并降低钙钛矿薄膜中的陷阱状态密度。具有钝化的平面PVSC达到高度改善的PCE,19.64%,稳定效率为18.81%。更重要的是,在环境条件下1000小时储存后,具有钝化的未封装的钙钛矿器件在1000小时内保持近90%的原始效率,并且在高温(120摄氏度)热加速老化后持续87%的初始性能,显示出高度增强的水分和热稳定性。因此,本研究为未来的设计和优化PVSC具有更高效率和更高稳定性的途径。

著录项

  • 来源
    《Advanced materials interfaces》 |2020年第3期|共10页
  • 作者单位

    Huazhong Agr Univ Coll Sci Wuhan 430070 Hubei Peoples R China;

    Huazhong Agr Univ Coll Sci Wuhan 430070 Hubei Peoples R China;

    Huazhong Agr Univ Coll Sci Wuhan 430070 Hubei Peoples R China;

    Huazhong Agr Univ Coll Sci Wuhan 430070 Hubei Peoples R China;

    Huazhong Agr Univ Coll Sci Wuhan 430070 Hubei Peoples R China;

    Huazhong Agr Univ Coll Sci Wuhan 430070 Hubei Peoples R China;

    Huazhong Agr Univ Coll Sci Wuhan 430070 Hubei Peoples R China;

    Huazhong Agr Univ Coll Sci Wuhan 430070 Hubei Peoples R China;

    Chinese Acad Sci Wuhan Inst Phys &

    Math State Key Lab Magnet Resonance &

    Atom &

    Mol Phys Wuhan 430071 Hubei Peoples R China;

    Chinese Acad Sci Wuhan Inst Phys &

    Math State Key Lab Magnet Resonance &

    Atom &

    Mol Phys Wuhan 430071 Hubei Peoples R China;

    Huazhong Agr Univ Coll Sci Wuhan 430070 Hubei Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 特种结构材料;
  • 关键词

    defect passivation; high performance; high stability; perovskite solar cells; silica oligomer;

    机译:缺陷钝化;高性能;高稳定性;Perovskite太阳能电池;二氧化硅低聚物;

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