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Proton-Radiation Tolerant All-Perovskite Multijunction Solar Cells

机译:质子 - 辐射耐受全-PEROVSKITE多结太阳能电池

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摘要

Radiation-resistant but cost-efficient, flexible, and ultralight solar sheets with high specific power (W g(-1)) are the "holy grail" of the new space revolution, powering private space exploration, low-cost missions, and future habitats on Moon and Mars. Herein, this study investigates an all-perovskite tandem photovoltaic (PV) technology that uses an ultrathin active layer (1.56 mu m) but offers high power conversion efficiency, and discusses its potential for high-specific-power applications. This study demonstrates that all-perovskite tandems possess a high tolerance to the harsh radiation environment in space. The tests under 68 MeV proton irradiation show negligible degradation (6%) at a dose of 10(13) p(+) cm(-2) where even commercially available radiation-hardened space PV degrade 22%. Using high spatial resolution photoluminescence (PL) microscopy, it is revealed that defect clusters in GaAs are responsible for the degradation of current space-PV. By contrast, negligible reduction in PL of the individual perovskite subcells even after the highest dose studied is observed. Studying the intensity-dependent PL of bare low-gap and high-gap perovskite absorbers, it is shown that the V-OC, fill factor, and efficiency potentials remain identically high after irradiation. Radiation damage of all-perovskite tandems thus has a fundamentally different origin to traditional space PV.
机译:具有高特定功率(W G(-1))的抗辐射但具有成本效益,灵活的和超轻的太阳能电池是新的空间革命的“圣杯”,供电私人空间探索,低成本任务和未来月亮和火星的栖息地。这里,本研究研究了使用超薄活性层(1.56μm)但提供高功率转换效率的全钙钛矿串联光伏(PV)技术,并讨论其对高特种功率应用的电位。本研究表明,全钙钛矿串联对太空中的苛刻辐射环境具有很高的耐受性。在68MeV质子辐射下的测试显示在10(13)p(+)cm(+)cm(-2)的剂量下可忽略的降解(& 6%),其中甚至市售的辐射 - 硬化空间PV降解& 22%。使用高空间分辨率光致发光(PL)显微镜,揭示了GaAs中的缺陷簇负责当前空间PV的降解。相比之下,即使观察到最高剂量后,个体钙钛矿子细胞的PL的忽略不计。研究裸光间隙和高间隙钙钛矿吸收剂的强度依赖性PL,显示在照射后V-OC,填充因子和效率电位保持相同高。因此,全钙钛矿串联的辐射损伤对传统空间PV具有根本不同的来源。

著录项

  • 来源
    《Advanced energy materials 》 |2021年第41期| 2102246.1-2102246.14| 共14页
  • 作者单位

    Univ Cambridge Dept Phys Cavendish Lab JJ Thomson Ave Cambridge CB3 OHE England;

    Natl Renewable Energy Lab Ctr Chem & Nanosci 15013 Denver West Pkwy Golden CO 80401 USA|Swift Solar Inc 981 Bing St San Carlos CA 94070 USA;

    Univ Cambridge Dept Phys Cavendish Lab JJ Thomson Ave Cambridge CB3 OHE England;

    Univ Cambridge Dept Phys Cavendish Lab JJ Thomson Ave Cambridge CB3 OHE England;

    Helmholtz Zentrum Berlin Mr Mat & Energie GmbH Young Investigator Grp Perovskite Tandem Solar Ce Kekulestr 5 D-12489 Berlin Germany;

    Helmholtz Zentrum Berlin Mat & Energie GmbH Protonen Die Therapie Hahn Meitner Pl 1 D-14109 Berlin Germany;

    Helmholtz Zentrum Berlin Mat & Energie GmbH Protonen Die Therapie Hahn Meitner Pl 1 D-14109 Berlin Germany;

    Helmholtz Zentrum Berlin Mat & Energie GmbH Protonen Die Therapie Hahn Meitner Pl 1 D-14109 Berlin Germany|Beuth Hsch Kir Tech Berlin Fachbereich Math Phys Chem 2 Luxemburgerstr 10 D-13353 Berlin Germany;

    Trisolx LLC Los Angeles CA 90036 USA;

    Univ Cambridge Dept Phys Cavendish Lab JJ Thomson Ave Cambridge CB3 OHE England|Univ Cambridge Dept Mat Sci & Met 27 Charles Babbage Rd Cambridge CB3 0FS England;

    Salerno Univ Dept Ind Engn Dlln Fisciano SA 84084 Australia;

    Univ Cambridge Dept Phys Cavendish Lab JJ Thomson Ave Cambridge CB3 OHE England|Univ Cambridge Dept Chem Engn & Biotechnol Philippa Fawcett Dr Cambridge CB3 0AS England;

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

    all-perovskite tandem photovoltaics; proton-irradiation; radiation hardness; solar cells; space photovoltaics;

    机译:All-Perovskite串联光伏;质子辐照;辐射硬度;太阳能电池;空间光伏;

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