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Defect density and performance influenced by ozone treatment of ZnO interface in inverted organic solar cell

机译:逆转有机太阳能电池ZnO界面臭氧处理影响的缺陷密度和性能

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摘要

Zinc oxide (ZnO) has great potential as an electron transport layer (ETL) for producing efficient and stable organic solar cells. The effect of ozone treatment on ZnO working as the ETL in the organic solar cell has been studied by analyzing crystallinity, the defect density of states, and charge carrier dynamics from transient absorption spectroscopy to understand its role in the improvement in the interface between ETL and active layers. We have observed that a 10-minute continuous ozone treatment of ZnO film demonstrates improvement in its crystallinity leading to a 23% increment in short circuit current. The improvement in the crystallinity has been confirmed by the morphological and structural analysis using SEM and GIXRD. These analyses reveal the formation of a flake-like structure and an increase in peak intensity in GIXRD. It has been observed that ozone exposure has significantly affected the carrier recombination resistance, ideality factor of the device. From transient absorption spectroscopy, it has been found that for 10 min ozone-treated ZnO film has an average carrier transport time (661.79 ps), which is smallest as compared to untreated film or over treated film leading to faster carrier extraction through ETL. Further, the study of defect density of states shows that optimized ozonetreated film show 22.08% decrease in defects as compared to the control device, which primarily reflected as the improvement in the current density leading to increase in device efficiency from 2.95% to 3.75%.
机译:氧化锌(ZnO)具有巨大的电子传输层(ETL),用于生产有效且稳定的有机太阳能电池。通过分析结晶度,状态缺陷密度,从瞬态吸收光谱从瞬态吸收光谱学,从瞬态吸收光谱学到ZnO工作作为有机太阳能电池中的ETL的ZnO工作的影响。有源层。我们观察到,ZnO膜的10分钟连续臭氧处理证明其结晶度的改善,导致短路电流的23%增量。通过SEM和GixRD的形态学和结构分析证实了结晶度的改善。这些分析揭示了薄片状结构的形成和GixRD中峰强度的增加。已经观察到臭氧暴露的影响显着影响了装置的载体重组电阻,理想因子。从瞬时吸收光谱检查,已经发现,对于10分钟的臭氧处理的ZnO膜具有平均载流量(661.79 ps),与未处理的薄膜或过度处理过的膜相比,其最小,导致通过Etl更快地载入载体。此外,各种缺陷密度的研究表明,与控制装置相比,优化的臭氧物膜显示出22.08%的缺陷减少,主要被反映为电流密度的改善,导致装置效率从2.95%增加到3.75%。

著录项

  • 来源
    《Solar Energy》 |2021年第9期|942-949|共8页
  • 作者单位

    CSIR Natl Phys Lab Adv Mat & Devices Metrol Div Photovolta Metrol Sect Dr KS Krishnan Marg New Delhi 110012 India|Acad Sci & Innovat Res AcSIR Ghaziabad 201002 Uttar Pradesh India;

    Indian Inst Technol Delhi Ctr Energy Studies Hauz Khas New Delhi 110016 India;

    CSIR Natl Phys Lab Adv Mat & Devices Metrol Div Photovolta Metrol Sect Dr KS Krishnan Marg New Delhi 110012 India|Acad Sci & Innovat Res AcSIR Ghaziabad 201002 Uttar Pradesh India;

    CSIR Natl Phys Lab Adv Mat & Devices Metrol Div Photovolta Metrol Sect Dr KS Krishnan Marg New Delhi 110012 India|Acad Sci & Innovat Res AcSIR Ghaziabad 201002 Uttar Pradesh India;

    CSIR Natl Phys Lab Adv Mat & Devices Metrol Div Photovolta Metrol Sect Dr KS Krishnan Marg New Delhi 110012 India|Acad Sci & Innovat Res AcSIR Ghaziabad 201002 Uttar Pradesh India;

    CSIR Natl Phys Lab Adv Mat & Devices Metrol Div Photovolta Metrol Sect Dr KS Krishnan Marg New Delhi 110012 India|Acad Sci & Innovat Res AcSIR Ghaziabad 201002 Uttar Pradesh India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Zinc oxide; Ozone treatment; Defect density; Recombination resistance; Electron transport layer; Organic solar cell;

    机译:氧化锌;臭氧处理;缺陷密度;复合电阻;电子传输层;有机太阳能电池;

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