Emergence of Superconductivity in Indium Triphosphate via Pressure‐Tuned Interlayer Bond Formation

IF 2.5 4区 物理与天体物理 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Physica Status Solidi-Rapid Research Letters Pub Date : 2024-08-28 DOI:10.1002/pssr.202400206
Hao Ding, Jingyu Hou, Kun Zhai, Xin Gao, Zhiwei Shen, Junquan Huang, Bingchao Yang, Feng Ke, Congpu Mu, Fusheng Wen, Jianyong Xiang, Bochong Wang, Tianyu Xue, Anmin Nie, Xiaobing Liu, Lin Wang, Xiang‐Feng Zhou, Zhongyuan Liu
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Abstract

Tuning interlayer interactions offer an alternative approach to access novel electronic structure and intriguing physical properties in layered materials. Here, the emergence of a new form of superconductivity in two‐dimensional (2D) binary phosphides by strengthening the interlayer coupling with lattice compression is reported. Electrical transport measurements show strong evidence of superconductivity in InP3 with the highest critical temperature (Tc) of 9.5 K at 45.1 GPa. Raman and X‐ray diffraction (XRD) measurements indicate that the interlayer interactions are dramatically modulated under compression, along with the deformation of local In–P bipyramid structure and reduction of the interlayer distances, which eventually results in the formation of In–P bonds between neighboring In–P bipyramids and a Rm to Cmcm structural transition. First‐principles density functional theory (DFT) calculations reveal that pressure enhances the interlayer interactions, which increases the density of states (DOS) near the Fermi surface (N(EF)) and strengthens the electron–phonon coupling. Consequently, this favors the occurrence of superconductivity in compressed InP3. This study not only introduces a new superconductivity phase with enhanced electron–phonon coupling in binary phosphides, but also provides a platform for exploring the pressure effect on interlayer interactions in material systems with corrugated layered structure.
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通过压力调节的层间键形成实现三磷酸铟的超导性
调谐层间相互作用为获得层状材料的新型电子结构和有趣的物理特性提供了另一种方法。本文报告了通过晶格压缩加强层间耦合在二维(2D)二元磷化物中出现的一种新的超导形式。电传输测量结果表明,InP3 具有超导性的有力证据,在 45.1 GPa 的条件下,其最高临界温度 (Tc) 为 9.5 K。拉曼和 X 射线衍射(XRD)测量结果表明,在压缩过程中,层间相互作用发生了显著变化,同时局部 In-P 双锥体结构发生变形,层间距离缩短,最终导致相邻 In-P 双锥体之间形成 In-P 键,并出现 Rm 到 Cmcm 的结构转变。第一原理密度泛函理论(DFT)计算显示,压力增强了层间相互作用,从而提高了费米面(N(EF))附近的状态密度(DOS),并加强了电子-声子耦合。因此,这有利于在压缩 InP3 中实现超导。这项研究不仅在二元磷化物中引入了电子-声子耦合增强的新超导相,还为探索波纹层状结构材料系统中压力对层间相互作用的影响提供了一个平台。
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来源期刊
Physica Status Solidi-Rapid Research Letters
Physica Status Solidi-Rapid Research Letters 物理-材料科学:综合
CiteScore
5.20
自引率
3.60%
发文量
208
审稿时长
1.4 months
期刊介绍: Physica status solidi (RRL) - Rapid Research Letters was designed to offer extremely fast publication times and is currently one of the fastest double peer-reviewed publication media in solid state and materials physics. Average times are 11 days from submission to first editorial decision, and 12 days from acceptance to online publication. It communicates important findings with a high degree of novelty and need for express publication, as well as other results of immediate interest to the solid-state physics and materials science community. Published Letters require approval by at least two independent reviewers. The journal covers topics such as preparation, structure and simulation of advanced materials, theoretical and experimental investigations of the atomistic and electronic structure, optical, magnetic, superconducting, ferroelectric and other properties of solids, nanostructures and low-dimensional systems as well as device applications. Rapid Research Letters particularly invites papers from interdisciplinary and emerging new areas of research.
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