计算与理论凝聚态物理实验室

Laboratory of Computational & Theoretical Condensed Matter Physics

重庆大学物理学院

School of Physics, Chongqing University

认识成员 加入我们👋

凝聚态物质的结构和电子结构、凝聚态物质中的新奇量子现象(拓扑、超导、磁性、相变等)、量子运输与量子调控、能源材料与功能材料设计、量子力学计算的新方法和新理论

.js-id-最新

研究方向

*
Topological States
Exploring the exotic realm of topological phases, we uncover materials with protected boundary states that defy conventional classification. Our work spans topological insulators, Weyl semimetals, and higher-order topological systems, revealing how geometry and symmetry conspire to create robust electronic states. These discoveries pave the way for next-generation low-power electronics and fault-tolerant quantum technologies, where information flows without dissipation along protected pathways.
Topological States
Quantum Transport
Witnessing the elegant choreography of electrons in quantum materials, we study transport phenomena where topology dictates electron flow. Our research on quantum Hall effects and chiral anomaly reveals how electrons navigate materials with minimal scattering. These insights inspire novel device concepts for ultra-sensitive sensors, efficient energy conversion, and next-generation electronic circuits that harness topological protection.
Quantum Transport
Superconductivity
Delving into the quantum realm of superconductivity, we investigate materials where electrons form Cooper pairs with exotic symmetries and topological protection. Our research on Majorana fermions and topological superconductors seeks to harness these elusive particles for fault-tolerant quantum computation. By engineering novel superconducting states, we aim to create quantum bits that are intrinsically protected against decoherence, revolutionizing information processing.
Superconductivity
Magnetism
In the magnetic landscape where electron spins orchestrate novel quantum phenomena, we explore magnetic topological materials that intertwine magnetism with topology. These systems exhibit extraordinary properties like the quantum anomalous Hall effect and chiral edge states. Our research aims to manipulate spin textures for next-generation spintronic devices, enabling ultra-fast, energy-efficient information processing and storage technologies.
Magnetism
普通Marker
重庆大学虎溪校区 理科楼 LE307 王锐 : rcwang@cqu.edu.cn