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首页> 外文期刊>Physical review, B >Ultrafast exciton many-body interactions and hot-phonon bottleneck in colloidal cesium lead halide perovskite nanocrystals
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Ultrafast exciton many-body interactions and hot-phonon bottleneck in colloidal cesium lead halide perovskite nanocrystals

机译:UltraFast Exciton许多身体相互作用和胶体铯铅卤化物卤化物钙钛矿纳米晶体的瓶颈

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摘要

Defect-tolerant perovskite nanocrystals of the general formula Cs-Pb-X-3 (where X = Cl, Br, and I) have shown exceptional potential in fundamental physics as well as in novel optoelectronic applications as the next generation of solar cells. Although exciton many-body interactions such as biexciton Stark shift, state filling, and Auger recombination are studied extensively, other important correlated effects, such as band gap renormalization (BGR) and hot-phonon bottleneck, are not explored in these nanocrystals. Here we experimentally demonstrate the carrier density dependence of the BGR and an effective hot-phonon bottleneck in CsPb(Cl0.20Br0.80)(3) mixed-halide nanocrystals. The results are compared with two other halide compositions, namely, CsPbBr3 and CsPb(Br0.55I0.45)(3) nanocrystals with varying band gaps. The optical response of the nanocrystals changes dramatically across the spectral range of many hundreds of meV at high carrier density due to large BGR. We have calculated the BGR constant approximate to 6.0 +/- 0.3) x 10(-8) eV cm for CsPb(Cl0.20Br0.80)(3) nanocrystals that provides the amount of band gap shift as a function of carrier density. In these nanocrystals, an efficient hot-phonon bottleneck is observed at a carrier density of 3.1 x 10(17) cm(-3) that slows down the thermalization by 1 order of magnitude. Our findings reveal that the complex kinetic profile of the exciton dynamics can be analyzed by the global target analysis using the sequential model with increasing lifetimes.
机译:通式CS-PB-X-3(其中X = CL,BR和I)的缺陷耐钙钙钛矿纳米晶体在基本物理学以及新颖的光电应用中显示出作为下一代太阳能电池的卓越电位。尽管广泛地研究了诸如Biexciton STRAK换档,状态填充和螺旋钻重组的激子多体相互作用,但在这些纳米晶体中没有探索其他重要的相关效果,例如带隙重新定位(BGR)和热敏瓶颈。在这里,我们实验证明了BGR和CSPB(Cl0.20br0.80)(3)混合卤化物纳米晶体中的有效热敏瓶颈的载流子密度依赖性。将结果与另外两个卤化物组合物进行比较,即CSPBBR3和CSPB(BR0.55I0.45)(3)纳米晶,其具有不同的带空隙。由于大BGR,纳米晶体的光学响应在高载体密度的高载体密度下横跨数百MEV的光谱范围内变化。我们已经计算了CSPB(CL0.20BR0.80)(3)纳米晶体的6.0 +/- 0.3)×10(-8)EV cm的BGR恒定近似值,该纳米晶体为载体密度的函数提供带隙变换量的纳米晶体。在这些纳米晶体中,在3.1×10(17 )cm(-3)的载流子密度下观察到有效的热敏孔瓶颈,其减慢热化1级。我们的研究结果表明,使用顺序模型的全局目标分析可以通过随着寿命增加来分析激子动力学的复杂动力学曲线。

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  • 来源
    《Physical review, B》 |2018年第11期|共8页
  • 作者单位

    Indian Inst Sci Educ &

    Res Dept Phys Bhopal 462066 India;

    Indian Inst Sci Educ &

    Res Dept Phys Bhopal 462066 India;

    Indian Inst Sci Educ &

    Res Dept Chem Pune 411008 Maharashtra India;

    Indian Inst Sci Educ &

    Res Dept Phys Bhopal 462066 India;

    Indian Inst Sci Educ &

    Res Dept Chem Pune 411008 Maharashtra India;

    Natl Renewable Energy Lab Chem &

    Nanosci Sci Ctr Golden CO 80401 USA;

    Indian Inst Sci Educ &

    Res Dept Chem Pune 411008 Maharashtra India;

    Indian Inst Sci Educ &

    Res Dept Phys Bhopal 462066 India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 固体物理学;
  • 关键词

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