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The unprecedented phenomenon that a charge density wave (CDW) emerges inside the antiferromagnetic (AFM) phase indicates an unusual CDW mechanism associated with magnetism in FeGe. Here, we demonstrate that both the CDW and magnetism of…

Strongly Correlated Electrons · Physics 2024-07-08 Xueliang Wu , Xinrun Mi , Long Zhang , Chin-Wei Wang , Nour Maraytta , Xiaoyuan Zhou , Mingquan He , Michael Merz , Yisheng Chai , Aifeng Wang

Unveiling the interplay between spin density wave (SDW) and charge density wave (CDW) orders in correlated electron materials is important to obtain a comprehensive understanding of their electronic, structural, and magnetic properties.…

Strongly Correlated Electrons · Physics 2025-12-04 Mason L. Klemm , Tingjun Zhang , Barry L. Winn , Fankang Li , Feng Ye , Sijie Xu , Xiaokun Teng , Bin Gao , Ming Yi , Pengcheng Dai

The intertwining of charge, spin, and lattice degrees of freedom underlies the emergent properties of correlated materials. A recent prominent example is the kagome metal FeGe, which hosts coexisting charge density wave (CDW) and…

Charge density wave (CDW) in kagome materials with the geometric frustration is able to carry unconventional characteristics. Recently, a CDW has been observed below the antiferromagnetic order in kagome FeGe, in which magnetism and CDW are…

Kagome lattice can host abundant exotic quantum states such as superconductivity and charge density wave (CDW). Recently, successive orders of A-type antiferromagnetism (AFM), CDW and canted AFM have been manifested upon cooling in kagome…

Two-dimensional (2D) kagome lattice metals are interesting because they display flat electronic bands, Dirac points, Van Hove singularities, and can have interplay between charge density wave (CDW), magnetic order, and superconductivity. In…

Electron correlations often lead to emergent orders in quantum materials. Kagome lattice materials are emerging as an exciting platform for realizing quantum topology in the presence of electron correlations. This proposal stems from the…

The intrinsic frustrated nature of a kagome lattice is amenable to the realization of exotic phases of matter, such as quantum spin liquids or spin ices, and more recently the multiple-$\mathrm{\textbf{q}}$ charge density waves (CDW) in the…

Recent experiments report a charge density wave (CDW) in the antiferromagnet FeGe, but the nature of the charge ordering and the associated structural distortion remains elusive. We discuss the structural and electronic properties of FeGe.…

A hallmark of strongly correlated quantum materials is the rich phase diagram resulting from competing and intertwined phases with nearly degenerate ground state energies. A well-known example is the copper oxides, where a charge density…

In Kagome magnet FeGe, the coexistence of electron correlation, charge-density wave (CDW), and magnetism renders it ideal to study their interactions. Here, we combined the optical spectroscopy and the first-principles calculations to…

Materials Science · Physics 2024-12-24 A. Zhang , X. -L. Wu , R. Yang , A. -F. Wang , Y. -M. Dai , Z. -X. Shi

Understanding spin and lattice excitations in a metallic magnetic ordered system form the basis to unveil the magnetic and lattice exchange couplings and their interactions with itinerant electrons. Kagome lattice antiferromagnet FeGe is…

The charge density wave (CDW) is a macroscopic quantum state characterized by long-range lattice distortion and modulated charge density. Conventionally, CDWs compete with other electronic orders (e.g. superconductivity) and are suppressed…

Strongly Correlated Electrons · Physics 2025-07-23 Liucheng Chen , Mingwei Ma , Xiaohui Yu , Fang Hong

Electron-correlation-driven phonon soft modes have been recently reported in the antiferromagnetic kagome FeGe compound and associated with the observed charge density wave (CDW). In this paper, we present a systematic investigation of the…

We report on the charge dynamics of kagome FeGe, an antiferromagnet with a charge density wave (CDW) transition at $T_{\mathrm{CDW}} \simeq 105$ K, using polarized infrared spectroscopy and band structure calculations. We reveal pronounced…

Strongly Correlated Electrons · Physics 2025-03-03 Shaohui Yi , Zhiyu Liao , Qi Wang , Haiyang Ma , Jianpeng Liu , Xiaokun Teng , Bin Gao , Pengcheng Dai , Yaomin Dai , Jianzhou Zhao , Yanpeng Qi , Bing Xu , Xianggang Qiu

In this work, we theoretically study the charge order and orbital magnetic properties of a new type of antiferromagnetic kagome metal FeGe. Based on first principles density functional theory (DFT) calculations, we have studied the…

Mesoscale and Nanoscale Physics · Physics 2023-03-07 Hai-Yang Ma , Jia-Xin Yin , M. Zahid Hasan , Jianpeng Liu

Kagome metals show rich competing quantum phases due to geometry frustration, flat bands, many-body effects, and non-trivial topology. Recently, a novel charge density wave (CDW) was discovered deep inside the antiferromagnetic phase of…

Strongly Correlated Electrons · Physics 2024-12-09 Ziyuan Chen , Xueliang Wu , Ruotong Yin , Jiakang Zhang , Shiyuan Wang , Yuanji Li , Mingzhe Li , Aifeng Wang , Yilin Wang , Ya-Jun Yan , Dong-Lai Feng

Charge density wave (CDW) is a spontaneous spatial modulation of electric charges in solids whose general microscopic descriptions are yet to be completed. Layered kagome metals of $A$V$_3$Sb$_5$ ($A$ = K, Rb, Cs) provide a unique chance to…

Materials Science · Physics 2023-11-16 Changwon Park , Young-Woo Son

Motivated by the recent discovery of charge density wave (CDW) order in the magnetic kagom\'e metal FeGe, we study the single-orbital $t$-$U$-$V_1$-$V_2$ model on the kagom\'e lattice, where $U$, $V_1$, and $V_2$ are the onsite, nearest…

Strongly Correlated Electrons · Physics 2025-07-18 Yu-Han Lin , Jin-Wei Dong , Ruiqing Fu , Xian-Xin Wu , Ziqiang Wang , Sen Zhou

Kagome metals exhibit rich quantum states by the intertwining of lattice, charge, orbital and spin degrees of freedom. Recently, a novel charge density wave (CDW) ground state was discovered in kagome magnet FeGe and was revealed to be…

Materials Science · Physics 2024-07-16 Yilin Wang
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