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Strong bulk photovoltaic effect in chiral crystals in the visible spectrum

机译:可见光谱中手性晶体中的强散装光伏作用

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摘要

Structurally chiral materials hosting multifold fermions with large topological number have attracted considerable attention because of their naturally long surface Fermi arcs and bulk quantized circular photogalvanic effect (CPGE). Multifold fermions only appear in metallic states, and therefore most studies so far have only focused on the semimetals in compounds with chiral crystal structures. In this work, we show that the structurally chiral topological trivial insulators are also exotic states, which is interesting from the application point of view, owing to their natural advantage to host a large bulk photovoltaic effect in the visible wavelength region. In recent decades, the shift current in the visible wavelength region was limited to be 10 mu A/V-2 in all the experimentally measured reports. By scanning the insulators with chiral structure, we found a class of compounds with photoconductivity ranging from similar to 20 to similar to 80 mu A/V-2, which is comparable to the largest reported shift current. This work illustrates that the compounds with chiral structure can host both quantum CPGE and a strong shift current in the second-order optical response. Moreover, this work offers a good platform for the study of the shift current and its future application by putting the focus on insulators with chiral lattices, so far overlooked in photovoltaic technologies.
机译:由于其天然长的表面费米弧和散装量化圆形光致催化效应(CPGE),因此由于其天然长的表面积弧和散装量化圆形光致抗血管效应(CPGE)而具有大大拓扑数的多层晶片,具有大的拓扑数的多米粒子引起了相当大的关注。多污染物仅出现在金属状态,因此大多数研究到目前为止仅关注具有手性晶体结构的化合物中的半塑料。在这项工作中,我们表明,结构性手性拓扑微观绝缘体也是异乎寻常的状态,这是从应用的应用的有趣,由于它们的自然优势来在可见波长区域中寄出大散装光伏效果。近几十年来,在所有实验测量的报告中,可见波长区域中的偏移电流限制为10μA/ V-2。通过用手性结构扫描绝缘体,我们发现了一类具有光电导率的化合物,该化合物范围从20〜类似于80μA/ V-2的光电导率,其与最大报告的换档电流相当。这项工作说明了具有手性结构的化合物可以在二阶光学响应中托管量子CPGE和强的换档电流。此外,这项工作提供了一个很好的平台,用于研究换档电流及其未来应用,通过将专注于带有手性格子的绝缘体,到目前为止忽略了光伏技术。

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  • 来源
    《Physical review》 |2019年第24期|245206.1-245206.5|共5页
  • 作者单位

    Max Planck Inst Chem Phys Solids D-01187 Dresden Germany;

    DIPC San Sebastian 20018 Spain|Ikerbasque Fdn Bilbao 48013 Spain;

    Inst Neel 25 Rue Martyrs BP 166 F-38042 Grenoble 9 France;

    Max Planck Inst Chem Phys Solids D-01187 Dresden Germany|Harvard Univ Fac Arts & Sci Ctr Nanoscale Syst 11 Oxford St LISE 308 Cambridge MA 02138 USA;

    Max Planck Inst Chem Phys Solids D-01187 Dresden Germany;

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