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All-Inorganic Halide Perovskites as Potential Thermoelectric Materials: Dynamic Cation off-Centering Induces Ultralow Thermal Conductivity

机译:全无机卤化物PEROVSKITES作为潜在的热电材料:动态阳离子离心诱导超级导热率

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摘要

Halide perovskites are anticipated to impact next generation high performance solar cells because of their extraordinary charge transport and optoelectronic properties. However, their thermal transport behavior has received limited attention. In this work, we studied the thermal transport and thermoelectric properties of the CsSnBr_(3-x)I_x. perovskites. We find a strong correlation between lattice dynamics and an ultralow thermal conductivity for series CsSnBr_(3-x)I_x reaching 0.32 Wm~(-1)K~(-1) at 550 K. The CsSnBr_(3-x)I_x. also possess a decent Seebeck coefficient and controllable electrical transport properties. The crystallography data and theoretical calculations suggest the Cs atom deviates from its ideal cuboctahedral geometry imposed by the perovskite cage and behaves as a heavy atom rattling oscillator. This off-center tendency of Cs, together with the distortion of SnX_6 (X = Br or I) octahedra, produces a highly dynamic and disordered structure in CsSnBr_(3-x)I_x which gives rise to a very low Debye temperature and phonon velocity. Moreover, the low temperature heat capacity data suggests strong coupling between the low frequency optical phonons and heat carrying acoustical phonons. This induces strong phonon resonance scattering that induces the ultralow lattice thermal conductivity of CsSnBr_(3-x)I_x.
机译:由于其非凡的电荷运输和光电性能,预计卤化卤素佩洛夫斯基酯将影响下一代高性能太阳能电池。然而,它们的热传输行为受到有限的关注。在这项工作中,我们研究了CSSNBR_(3-X)I_x的热传输和热电性能。 Perovskites。我们在550 k处达到0.32Wm〜(3-x)k〜(-1)的CSSNBR_(3-x)I_x之间的超级热导率之间的强烈相关性。CSSNBR_(3-x)I_x。还具有体面的塞贝克系数和可控电气传输特性。晶体学数据和理论计算表明CS原子偏离其由钙钛矿笼施加的理想立方体几何形状,并表现为重原子嘎嘎作响振荡器。 CS的这种偏心趋势与SNX_6(x = Br或i)Octahedra的失真一起,在CSSNBR_(3-x)I_x中产生高度动态和无序的结构,这导致了非常低的德语温度和声子速度。此外,低温热容量数据表明低频光学声子和热携带声子音响之间的强耦合。这引起了强的声音共振散射,引起了CSSNBR_(3-X)I_x的超级晶格导热系数。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第20期|9553-9563|共11页
  • 作者单位

    Department of Chemistry Northwestern University Evanston Illinois 60208 United States;

    Department of Materials Science and Engineering Northwestern University Evanston Illinois 60208 United States;

    Materials Science Division Argonne National Laboratory Argonne Illinois 60439 United States;

    Department of Chemistry Northwestern University Evanston Illinois 60208 United States;

    Department of Materials Science and Engineering Northwestern University Evanston Illinois 60208 United States;

    Department of Materials Science and Engineering Northwestern University Evanston Illinois 60208 United States;

    Department of Chemistry Northwestern University Evanston Illinois 60208 United States;

  • 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);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 22:16:44

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