澳门金沙娱乐城官网-金沙官网

今天是
今日新發布通知公告1條 | 上傳規范

物理學院“博約學術論壇”系列報告第 201 期

來源:   發布日期:2019-05-21

題目:Ab-initio antiferromagnetic spintronics: from exotic interactions to novel transport effects
報告人:Dr. Jan-Philipp Hanke (Peter Grünberg Institut and Institute for Advanced Simulation, Forschungszentrum Jülich, Germany)
時  間:2019年5月23日(周四)上午10:00
地  點:北京理工大學中心教學樓501

摘要:
In the field of spintronics antiferromagnetic materials steadily move into the focus of attention owing to their unique properties, which range from utter sensitivity to electrical currents [1] to a whole world of possible topological effects rooting in complex real- and reciprocal-space behavior [2]. In my talk I will demonstrate that we can employ advanced ab-initio methods to access important characteristics of antiferromagnets (AFMs) such as spin-orbit torques, which ultimately lie at the foundation of our ability to control the AFM order by purely electrical means, and the Dzyaloshinskii-Moriya interaction that can aid us in forming complex real-space textures in the important class of synthetic AFMs [3]. Based on microscopic theory, I will also introduce novel phenomena which are inherent to antiferromagnetic materials, and which bear great promises for their applications. In particular, I will demonstrate that in non-coplanar AFMs there arises a “hidden” orbital order which manifests in what we refer to as topological orbital magnetization [4, 5]. We show that the emergent orbital magnetism should be prominent in many representative AFMs and could be observed with conventional techniques. Moreover, we uncover that the topological orbital magnetism originates from Berry phase properties of electrons hopping on a non-collinear lattice, and it mediates novel exchange interactions [6], able to stabilize an AFM order of given chirality without the need for Dzyaloshinskii-Moriya interaction or an external magnetic field. Based on tight-binding and ab-initio analysis, we show that the very same Berry phase effect, promoted in non-coplanar AFMs, not only stands at the foundation of the anomalous Hall effect in this class of materials [2], but also paves the way to a novel family of phenomena in magneto-optics, tagged as topological and quantum topological magneto-optical effects [7]. Possible applications of the latter manifestations of antiferromagnetism will be briefly discussed. 

簡歷:
2014: Master’s degree in Physics from RWTH Aachen, Germany.
2018: PhD degree in Physics from RWTH Aachen, Germany.
2018: Postdoc for one year at University of Mainz, Germany with Prof. Mathias Kl?ui.
since 2019: Postdoc at Forschungszentrum Juelich, Germany with Prof. Yuriy Mokrousov.
Main expertise: I develop and apply ab-initio methods to study the properties of realistic materials. Specifically, I am interested in Berry phase effects and topological phenomena in complex magnets, including anomalous Hall effect, orbital magnetism, spin-orbit torques, and Dzyaloshinskii-Moriya interaction.
Awards: I received in 2019 a dissertation prize of the German Physical Society for my PhD thesis.
 

聯系方式:wxfeng@bit.edu.cn
邀請人:馮萬祥 副教授
網    址:http://physics.bit.edu.cn/


临武县| 荆门市| 大发888hanpa| 至尊百家乐官网20130301| 红桃k娱乐城备用网址| 大发888玩家论坛| 六合彩网上下注| 王牌百家乐的玩法技巧和规则| 灵璧县| 大发娱乐城| 新濠国际娱乐| 丰禾线上娱乐| 大发888娱乐城官方下载| 大发888注册娱乐账号| 奔驰百家乐可信吗| 在线百家乐官网作| 百家乐官网api| 新津县| 免费玩百家乐的玩法技巧和规则| 温州市| 大发888老虎机官方| 足球百家乐网上投注| 大发888线上娱乐城加盟合作| 真人娱乐城源码| 赌片百家乐的玩法技巧和规则 | 百家乐扑克桌| 真人百家乐官网是啥游戏| 百家乐必赢术| 百家乐官网图形的秘密破解| 百家乐官网机器手怎么做弊| 贵族百家乐的玩法技巧和规则| 百家乐官网什么方法容易赢| 千亿娱百家乐官网的玩法技巧和规则 | 百家乐官网长龙怎么预判| 尊龙娱乐网| 金钱豹百家乐的玩法技巧和规则 | 江北区| 百家乐官网是否能赢| 全讯网首页| 菲律宾百家乐官网太阳城| 曲靖市|