學術活動
量子材料
Ferromagnetic quantum criticality
浏覽次數:
主講人: 袁輝球(浙江大學)
地點: 騰訊會議ID: 560-850-906
時間: 時間: 2022年4月20日 (周三)下午3:00
主持 聯系人: 李源<yuan.li@pku.edu.cn>
主講人簡介: 袁輝球,浙江大學物理系求是特聘教授、關聯物質研究中心常務副主任。1999-2003年在德國馬普固體化學物理研究所攻讀博士學位,獲德累斯頓工業大學理學博士,随後在美國伊利諾依大學香槟分校和拉斯阿拉莫斯國家實驗室從事博士後研究工作,2008年回國,任職浙江大學。先後入選教育部長江學者特聘教授、國家萬人計劃創新領軍人才、APS fellow。
袁輝球教授主要從事低溫、高壓、強磁場等綜合極端條件下關聯電子材料的奇異電子态研究,在重費米子物理、非常規超導、量子相變、強關聯拓撲态等方面取得了系列創新研究成果。在Nature、Science等期刊發表學術論文150餘篇;主持國家重點研發計劃和基金委重點項目等十餘個項目;在重要國際會議上做邀請報告90餘次;組織了系列國際會議,擔任SCES等國際會議的顧問以及SCPMA等7個國内外期刊的編委。

Abstract:

In strongly correlated electron systems, a magnetic transition can be continuously suppressed to zero temperature upon applying a non-thermal parameter like pressure, magnetic field or doping, giving rise to a quantum critical point (QCP), around which unconventional superconductivity and non-Fermi liquid behavior may appear [1]. Over the past years, antiferromagnetic quantum criticality has been widely observed in various correlated systems. However, a ferromagnetic quantum critical point is usually avoided in a clean ferromagnetic system. Recently, we show clear evidence for a pressure-induced ferromagnetic quantum critical point and the associated strange behavior in the stoichiometric heavy fermion metal CeRh6Ge4 [2]. In this seminar, I will present our progresses on the studies of this compound, including the effect of pressure [2] and chemical doping [3], measurements of quantum oscillations [4], ARPES [5] and neutron scattering [6].

References:

[1] Z. F. Weng et al., Rep. Prog. Phys. 79, 094503 (2016).

[2] B. Shen et al., Nature 579, 51 (2020).

[3] Y. J. Zhang et al., unpublished.

[4] A. Wang et al., Science Bulletin 66, 1389 (2021)

[5] Y. Wu et al., PRL 126, 216406 (2021)

[6] J. W. Shu et al., PRB 104, L140411 (2021)