Absence of phonon softening across a charge density wave transition due to quantum fluctuations

IF 9.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Yubi Chen, Terawit Kongruengkit, Andrea Capa Salinas, Runqing Yang, Yujie Quan, Fanghao Zhang, Ganesh Pokharel, Linus Kautzsch, Stephen D. Wilson, Sai Mu, John W. Harter, Bolin Liao
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Abstract

Kagome metals have emerged as a frontier in condensed matter physics due to their potential to host exotic quantum states. Among these, CsV 3 Sb 5 has attracted significant attention for the unusual coexistence of charge density wave (CDW) order and unconventional superconductivity, presenting an ideal system for exploring the emergent phenomena from the interplay of phonons, electronic fluctuations, and topological effects. The nature of CDW formation in CsV 3 Sb 5 is unconventional and has sparked considerable debate. In this study, we examine the origin of the CDW state via ab initio finite-temperature simulations of the lattice dynamics. Through a comparative study of CsV 3 Sb 5 and 2H-NbSe 2 , we demonstrate that the experimental absence of phonon softening—a hallmark of conventional CDW transition—in CsV 3 Sb 5 along with the presence of a weakly first-order transition, can be attributed to quantum zero-point atomic motion. This zero-point motion smears the free energy landscape of CDW, effectively stabilizing the pristine structure even below the CDW transition temperature. We argue that this surprising behavior could cause coexistence of pristine and CDW structures across the transition and lead to a weak first-order transition. Our predicted lattice dynamical behavior is supported by coherent phonon spectroscopy in single-crystalline CsV 3 Sb 5 . Our results provide crucial insights into the formation mechanism of CDW materials that exhibit little to no phonon softening, including cuprates, and highlight the surprising role of quantum effects in emergent properties of relatively heavy-element materials like CsV 3 Sb 5 .
由于量子涨落导致的电荷密度波跃迁中声子软化的缺失
由于具有承载奇异量子态的潜力,Kagome金属已成为凝聚态物理学的前沿。其中,CsV 3sb5因其电荷密度波(CDW)有序和非常规超导性的不寻常共存而备受关注,为探索声子、电子涨落和拓扑效应相互作用的涌现现象提供了理想的体系。cs3sb5中CDW地层的性质是非常规的,引发了相当大的争论。在这项研究中,我们通过从头开始的有限温度晶格动力学模拟来研究CDW状态的起源。通过对cs3sb5和2h - nbse2的比较研究,我们证明了cs3sb5中声子软化的实验缺失(传统CDW跃迁的标志)以及弱一阶跃迁的存在可以归因于量子零点原子运动。这种零点运动涂抹了CDW的自由能景观,即使低于CDW转变温度,也有效地稳定了原始结构。我们认为,这种令人惊讶的行为可能导致原始结构和CDW结构在整个转变过程中共存,并导致弱一阶转变。我们预测的晶格动力学行为得到了单晶cs3sb5的相干声子光谱的支持。我们的研究结果为包括铜酸盐在内的几乎没有声子软化的CDW材料的形成机制提供了重要的见解,并突出了量子效应在CsV 3sb5等相对重元素材料的涌现特性中的惊人作用。
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
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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