Sr3Zr2Cu4Q9 (Q = S and Se): two novel layered quaternary mixed transition metal chalcogenides

IF 3.5 3区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR Dalton Transactions Pub Date : 2024-12-17 DOI:10.1039/d4dt02928c
Sayani Barman, Sweta Yadav, Akshay K. Ray, Swati, M. Deepa, Manish K. Niranjan, Jai Prakash
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Abstract

Depending on their bandgaps, mixed metal layered chalcogenides are potential candidates for thermoelectric and photovoltaic applications. Herein, we reported the exploratory synthesis of Sr–Zr–Cu–Q (Q = S/Se) systems, resulting in the identification of two novel quaternary chalcogenides: Sr3Zr2Cu4S9 and Sr3Zr2Cu4Se9. These isoelectronic compounds (Sr3Zr2Cu4Q9) crystallized in two different structural types. The Sr3Zr2Cu4S9 structure (space group: PAbstract Image) adopted the Ba3Zr2Cu4S9 structure type with eighteen unique atomic sites: 3 × Sr, 2 × Zr, 4 × Cu, and 9 × S. In contrast, the Sr3Zr2Cu4Se9 structure (PAbstract Image) represented a unique structure type with nineteen unique atomic positions including one additional Cu site compared to the Sr3Zr2Cu4S9 structure. The sulfide structure was stoichiometric, whereas the selenide structure was found to be non-stoichiometric with three partially occupied Cu positions. The Sr3Zr2Cu4Q9 structures consisted of Abstract Image layers with the Sr2+ cations occupying the interstitial spaces. In both structures, the Zr atoms occupied distorted octahedral positions. A striking difference between the two structures resulted from the distinct bonding interactions between the Cu and Q atoms. The optical bandgap of polycrystalline Sr3Zr2Cu4S9 was 1.7(1) eV. Interestingly, resistivity measurements of polycrystalline Sr3Zr2Cu4Se9 revealed metallic/degenerate semiconducting behavior at low temperatures. The photovoltaic performance of semiconducting Sr3Zr2Cu4S9 demonstrated ∼24% increment in power conversion efficiency when incorporated into a TiO2/CdS photoanode due to its narrower bandgap, which increased the light-harvesting ability of the cell. We also explored the theoretical electronic structures, COHP, and Bader charges of the Sr3Zr2Cu4Q9 structures using DFT calculations.

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Sr3Zr2Cu4Q9(Q = S 和 Se):两种新型层状四元混合过渡金属铬化物
根据带隙的不同,混合金属层状瑀有可能成为热电和光伏应用的候选材料。在此,我们报告了 Sr-Zr-Cu-Q(Q = S/Se)系统的探索性合成,从而发现了两种新型的四元瑀:Sr3Zr2Cu4S9 和 Sr3Zr2Cu4Se9。这些等电子化合物(Sr3Zr2Cu4Q9)以两种不同的结构类型结晶。Sr3Zr2Cu4S9 结构(空间群:P)采用了 Ba3Zr2Cu4S9 的结构类型,具有 18 个独特的原子位点:3 × Sr、2 × Zr、4 × Cu 和 9 × S;而 Sr3Zr2Cu4Se9 结构(P)则代表了一种独特的结构类型,具有 19 个独特的原子位点,包括比 Sr3Zr2Cu4S9 结构多出的一个 Cu 位点。硫化物结构为化学计量结构,而硒化物结构为非化学计量结构,有三个部分占据的 Cu 位。Sr3Zr2Cu4Q9 结构由 Sr2+ 阳离子占据间隙空间的层组成。在这两种结构中,Zr 原子占据扭曲的八面体位置。这两种结构之间的显著差异来自于 Cu 原子和 Q 原子间不同的成键相互作用。多晶 Sr3Zr2Cu4S9 的光带隙为 1.7(1) eV。有趣的是,多晶 Sr3Zr2Cu4Se9 的电阻率测量结果表明,在低温下它具有金属/退化半导体行为。半导体 Sr3Zr2Cu4Se9 在加入 TiO2/CdS 光阳极后,由于其带隙更窄,其光电转换效率提高了 24%,从而增强了电池的光收集能力。我们还利用 DFT 计算探讨了 Sr3Zr2Cu4Q9 结构的理论电子结构、COHP 和 Bader 电荷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Dalton Transactions
Dalton Transactions 化学-无机化学与核化学
CiteScore
6.60
自引率
7.50%
发文量
1832
审稿时长
1.5 months
期刊介绍: Dalton Transactions is a journal for all areas of inorganic chemistry, which encompasses the organometallic, bioinorganic and materials chemistry of the elements, with applications including synthesis, catalysis, energy conversion/storage, electrical devices and medicine. Dalton Transactions welcomes high-quality, original submissions in all of these areas and more, where the advancement of knowledge in inorganic chemistry is significant.
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