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首页> 外文期刊>Advanced energy materials >Rational Core–Shell Design of Open Air Low Temperature In Situ Processable CsPbI_3 Quasi-Nanocrystals for Stabilized p-i-n Solar Cells
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Rational Core–Shell Design of Open Air Low Temperature In Situ Processable CsPbI_3 Quasi-Nanocrystals for Stabilized p-i-n Solar Cells

机译:露天低温原位可加工CsPbI_3准纳米晶体用于稳定的p-i-n太阳能电池的合理核壳设计

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摘要

As a promising alternative, inorganic perovskite nanocrystals allow reinforced stability of photovoltaic device. Unfortunately, directly assembling these nanocrystals into film is uncontrollable. Instead, in situ assembling technology under low temperature in open air is attractive but limited due to the tendency of nonperovskite transition. The adverse shell ligands and unstable core lattices are known as the fundamental problems. In order to address this issue, here proposed is a rational core-shell design: 1) with respect to ligands, a new one, 4-fluorophenethylammonium iodide, is used to enhance bonding force and charge coupling between ligands and nanocrystals; 2) with respect to lattices, a novel compound H2PbI4 is employed to assist divalent ion (Mn2+) doping into perovskite lattices. By low temperature in situ processing CsPbI3 quasi-nanocrystal film, the highest power conversion efficiency of 13.4% for p-i-n solar cells is achieved, which retains 92% after 500 h in ambient air. The current study underlines the significance of rational hierarchical design of inorganic perovskite nanocrystals, especially for low temperature in situ processable electronic devices.
机译:作为有前途的替代方法,无机钙钛矿纳米晶体可增强光伏器件的稳定性。不幸的是,将这些纳米晶体直接组装成薄膜是不可控制的。取而代之的是,在露天低温下的现场组装技术很有吸引力,但由于非钙钛矿过渡的趋势而受到限制。不利的壳配体和不稳定的核晶格是基本问题。为了解决这个问题,这里提出一种合理的核-壳设计:1)关于配体,使用一种新的碘化4-氟苯乙铵碘化物来增强配体与纳米晶体之间的键合力和电荷耦合; 2)关于晶格,采用新型化合物H2PbI4协助二价离子(Mn2 +)掺杂到钙钛矿晶格中。通过低温原位处理CsPbI3准纳米晶体薄膜,可实现p-i-n太阳能电池最高的13.4%的功率转换效率,在环境空气中放置500 h后仍可保持92%的功率转换效率。当前的研究强调了无机钙钛矿纳米晶体合理分层设计的重要性,特别是对于低温原位可加工电子设备。

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  • 来源
    《Advanced energy materials》 |2019年第31期|1901787.1-1901787.10|共10页
  • 作者单位

    Seoul Natl Univ, Global Frontier Ctr Multiscale Energy Syst, Seoul 08826, South Korea;

    Seoul Natl Univ, Global Frontier Ctr Multiscale Energy Syst, Seoul 08826, South Korea|Seoul Natl Univ, Dept Mech & Aerosp Engn, Seoul 08826, South Korea;

    Seoul Natl Univ, Global Frontier Ctr Multiscale Energy Syst, Seoul 08826, South Korea|Seoul Natl Univ, Dept Mech & Aerosp Engn, Seoul 08826, South Korea;

    Seoul Natl Univ, Global Frontier Ctr Multiscale Energy Syst, Seoul 08826, South Korea|Korea Inst Sci & Technol, Photoelect Hybrids Res Ctr, Natl Agenda Res Div, Seoul 02792, South Korea;

    Xi An Jiao Tong Univ, Key Lab Phys Elect & Devices, Minist Educ, Sch Elect & Informat Engn, 28 Xianning West Rd, Xian 710049, Shaanxi, Peoples R China|Xi An Jiao Tong Univ, Shaanxi Key Lab Informat Photon Tech, Sch Elect & Informat Engn, 28 Xianning West Rd, Xian 710049, Shaanxi, Peoples R China|Shanxi Univ, Collaborat Innovat Ctr Extreme Opt, Taiyuan 030006, Shanxi, Peoples R China;

    Seoul Natl Univ, Global Frontier Ctr Multiscale Energy Syst, Seoul 08826, South Korea|Seoul Natl Univ, Dept Mech & Aerosp Engn, Seoul 08826, South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    core-shell design; CsPbI3 quasi-nanocrystals; in situ process; low temperature; p-i-n solar cells;

    机译:核心壳设计;CSPBI3准纳米晶体;原位过程;低温;P-I-N太阳能电池;

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