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通过钴掺杂增强钛酸锶钙钛矿的光催化水分解:实验和理论密度泛函理论理解

Enhanced Photocatalytic Water Splitting of SrTiO Perovskite through Cobalt Doping: Experimental and Theoretical DFT Understanding.

作者信息

Lamhani Mohammed, Chchiyai Zakaria, Elomrani Abdelali, Manoun Bouchaib, Hasnaoui Abdellatif

机构信息

FPK, Laboratory of Materials, Mathematics and Environment Sciences (LS2ME),Sultane Moulay Slimane University of Beni Mellal, 25000 Khouribga, Morocco.

FST, Rayonnement-Matière et Instrumentation, S3M ,Hassan First University of Settat, 26000 Settat, Morocco.

出版信息

Inorg Chem. 2023 Aug 21;62(33):13405-13418. doi: 10.1021/acs.inorgchem.3c01758. Epub 2023 Aug 9.

DOI:10.1021/acs.inorgchem.3c01758
PMID:37556229
Abstract

Throughout extensive research endeavors, SrTiO has emerged as a promising photocatalytic material for utilizing solar energy and facilitating hydrogen production via water splitting. Yet, the pursuit of enhanced efficiency and amplified hydrogen generation has prompted researchers to delve into the realm of advanced doping strategies. In this work, using experimental characteristics and DFT calculations, we studied the effect of cobalt substitution on the structural, electronic, optical, and magnetic properties as well as the photocatalytic activity of SrTiCoO ( = 0, 0.125, 0.25, 0.375, and 0.5) perovskites. The samples were successfully prepared by using the solid-state reaction method. Based on X-ray diffraction and the Rietveld refinement method, the elaborated samples were shown to preserve the absorption range up to the visible region. Moreover, the position of band edge levels after cobalt doping becomes more appropriate for water splitting. Our findings report that all cobalt-doped compounds exhibit good photocatalytic activities and could be used as suitable photocatalyst materials for hydrogen production.

摘要

在广泛的研究工作中,SrTiO已成为一种有前途的光催化材料,可用于利用太阳能并通过水分解促进制氢。然而,对提高效率和增加产氢量的追求促使研究人员深入研究先进的掺杂策略领域。在这项工作中,我们利用实验特性和密度泛函理论(DFT)计算,研究了钴取代对SrTiCoO( = 0、0.125、0.25、0.375和0.5)钙钛矿的结构、电子、光学和磁性性质以及光催化活性的影响。通过固态反应法成功制备了样品。基于X射线衍射和Rietveld精修方法,所制备的样品在可见光区域仍保持吸收范围。此外,钴掺杂后带边能级的位置更适合水分解。我们的研究结果表明,所有钴掺杂化合物都表现出良好的光催化活性,可作为合适的光催化剂材料用于制氢。

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