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Exotic optoelectronic behaviors in CH_3NH_3PbCl_3 perovskite single crystals: Co-existence of free and bound excitons with structural phase transitions

机译:CH_3NH_3PBCL_3钙钛矿单晶的异国情调的光电行为:具有结构相转变的自由和结合激子的共存

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摘要

CH_3NH_3PbCl_3 (MAPbCl_3) perovskite single crystal is attractive for the ultra-violet detector due to its wide bandgap and comparative stability over iodine or bromine systems. Single crystals of MAPbCl_3 perovskite are also intriguing owing to its generic type of materials for fundamental photophysical properties and excitonic behaviors for its use in devices. Furthermore, recent progress using crystal-based device fabrication will shed light on semiconducting devices like Ⅲ-Ⅴ compounds. In this study, a structurally well-defined crystal is grown and examined to reveal free and bound excitonic behaviors depending on the structural phase transition. We classified the free and bound excitonic behaviors by temperature- and power density-dependent photoluminescence and optical transmission spectra. The single emission peak located at 3.1 eV and blueshift depending on decreasing the temperature is attributed to the radiative recombination of the free exciton at the cubic and the tetragonal phases, whereas the several peaks from the bound excitonic transition are just revealed under 120 K of the orthorhombic phase. We also determined the work function distribution and band structures with excitonic bound states via Kelvin probe force microscopy. The optoelectronic properties resulted in the excitonic behaviors can be a fundamental approach for the construction of perovskite-based optoelectronic and photonic applications.
机译:CH_3NH_3PBCL_3(MAPBCL_3)PEROVSKITE单晶对超紫色检测器具有吸引力,由于其宽带隙和碘盐系统的宽带隙和比较稳定性。由于其在设备中使用的基本光物理性质和兴奋性行为,因此Mapbcl_3 Perovskite的单晶也是有趣的。此外,使用基于晶体的器件制造的最近进展将在Ⅲ-β化合物的半导体装置上脱光。在该研究中,生长并检查结构明确定义的晶体,以根据结构相转变露出自由和结合的兴奋性行为。我们通过温度和功率密度依赖性光致发光和光传输光谱分为自由和绑定的兴奋行为。位于3.1eV和BlueShift的单个发射峰根据降低温度归因于立方体和四方相的自由激子的辐射重组,而来自结合的兴奋转换的几个峰恰好在120 k下显示正晶相。我们还通过Kelvin探针力显微镜测定了随着激子界定状态的工作功能分布和带结构。导致兴奋性行为的光电性能可以是佩罗夫斯基钛矿的光电和光子应用构建的基本方法。

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  • 来源
    《Applied Physics Letters》 |2021年第14期|143301.1-143301.6|共6页
  • 作者单位

    Department of Physics Ewha Womans University Seoul 03760 South Korea;

    Department of Chemistry and 4D LABS Simon Fraser University Burnaby B.C. V5A 1S6 Canada;

    Department of Physics Ewha Womans University Seoul 03760 South Korea;

    Department of Physics Ewha Womans University Seoul 03760 South Korea;

    Department of Physics Ewha Womans University Seoul 03760 South Korea;

    Department of Physics Ewha Womans University Seoul 03760 South Korea;

    Department of Physics Ewha Womans University Seoul 03760 South Korea;

    Department of Physics Yonsei University Seoul 03722 South Korea;

    Department of Physics Yonsei University Seoul 03722 South Korea;

    Quantum Functional Semiconductor Research Center Dongguk University Seoul 04620 South Korea;

    Department of Chemistry and 4D LABS Simon Fraser University Burnaby B.C. V5A 1S6 Canada;

    Department of Physics Ewha Womans University Seoul 03760 South Korea;

  • 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);
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  • 正文语种 eng
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