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显著的激子效应削弱了β-CuVO的光催化效率。

Sizable Excitonic Effects Undermining the Photocatalytic Efficiency of β-CuVO.

作者信息

Wiktor Julia, Reshetnyak Igor, Strach Michal, Scarongella Mariateresa, Buonsanti Raffaella, Pasquarello Alfredo

机构信息

Chaire de Simulation à l'Echelle Atomique (CSEA) , Ecole Polytechnique Fédérale de Lausanne (EPFL) , CH-1015 Lausanne , Switzerland.

Laboratory of Nanochemistry for Energy (LNCE) , Ecole Polytechnique Fédérale de Lausanne (EPFL) , CH-1951 Sion , Switzerland.

出版信息

J Phys Chem Lett. 2018 Oct 4;9(19):5698-5703. doi: 10.1021/acs.jpclett.8b02323. Epub 2018 Sep 17.

Abstract

Copper vanadates have been proposed as promising photoanodes for water-splitting photoelectrochemical cells, but their performance has recently been shown to be severely limited. To understand this behavior, we study the electronic structure and the optical properties of β-CuVO both experimentally and computationally. The measured absorption spectrum shows an absorption peak at 1.5 eV followed by the onset of an apparent continuum at 2.26 eV, as generally found for this class of materials. We perform calculations within the framework of the QS GW̃ method and the Bethe-Salpeter equation while including effects of magnetic ordering, nuclear quantum motion, and thermal vibrations. We demonstrate the occurrence of two kinds of excitons with high binding energies upon optical excitation in β-CuVO, which account for the first absorption peak and the lower edge of the apparent continuum. The results are confirmed by photoluminescence measurements, where sub-band-gap emissions are found for both excitons. These results provide an explanation for the low photocatalytic efficiencies of copper vanadates, despite the favorable size of their optical band gaps.

摘要

钒酸铜已被提议作为用于光解水光电器件的有前景的光阳极,但最近已表明它们的性能受到严重限制。为了解这种行为,我们通过实验和计算研究了β-CuVO的电子结构和光学性质。测量的吸收光谱显示在1.5 eV处有一个吸收峰,随后在2.26 eV处出现明显的连续吸收起始,这是这类材料通常的情况。我们在QS GW̃方法和贝叶斯-萨尔皮特方程的框架内进行计算,同时考虑磁有序、核量子运动和热振动的影响。我们证明了在β-CuVO中光激发时会出现两种具有高结合能的激子,它们解释了第一个吸收峰和明显连续吸收的下边缘。光致发光测量证实了这些结果,其中发现两种激子都有亚带隙发射。这些结果为钒酸铜光催化效率低提供了解释,尽管它们光学带隙的大小有利。

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