Negative Chemical Pressure Effect on the Superconductivity and Charge Density Wave of Cu0.5Ir1–x Zr x Te2

This study demonstrates the design and synthesis of the Cu0.5Ir1–x Zr x Te2 (0 ≤ x ≤ 0.15) system by partial substitution of Ir with Zr acting as a negative chemical pressure. With the doping of Zr, the cell parameters significantly expand, signifying an effective negative chemical pressure. The exp...

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Veröffentlicht in:Journal of physical chemistry. C 2022-02, Vol.126 (7), p.3705-3712
Hauptverfasser: Zeng, Lingyong, Ji, Yi, Yu, Dongpeng, Guo, Shu, He, Yiyi, Li, Kuan, Huang, Yanhao, Zhang, Chao, Yu, Peifeng, Luo, Shaojuan, Wang, Huichao, Luo, Huixia
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Sprache:eng
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Zusammenfassung:This study demonstrates the design and synthesis of the Cu0.5Ir1–x Zr x Te2 (0 ≤ x ≤ 0.15) system by partial substitution of Ir with Zr acting as a negative chemical pressure. With the doping of Zr, the cell parameters significantly expand, signifying an effective negative chemical pressure. The experimental results find evidence that the charge density wave (CDW)-like order is immediately quenched by subtle Zr substitution for Ir and a classical dome-shape T c(x) that peaked at 2.80 K can be observed. The optimal Cu0.5Ir0.95Zr0.05Te2 compound is a Bardeen–Cooper–Schrieffer (BCS)-type superconductor and exhibits type-II superconductivity (SC). However, high Zr concentrations (x > 0.1) can provoke disorders, inducing the reappearance of CDW orders. The present study shows that the Cu0.5Ir1–x Zr x Te2 (0 ≤ x ≤ 0.15) system may provide a new platform for further understanding multiple electronic orders in transition-metal dichalcogenides.
ISSN:1932-7447
1932-7455
DOI:10.1021/acs.jpcc.1c10092