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Welcome to Quantum and Topology Epitaxy lab!!  
Welcome to Quantum and Topology Epitaxy lab!!  


We explore unknown scientific territories in thin film quantum materials, utilizing and developing unique quantum materials growth techniques with atomic scale controllability and fabricating novel device structures. With these unique capabilities, we investigate various thin film quantum materials including topological insulators, topological superconductors, Weyl/Dirac semimetals, materials for quantum computation, 2D materials, complex oxides and their hybrid structures, searching for new physics and applications in the quantum arena.
We are scientific explorers seeking to discover previously-unknown territories in the quantum and topological phase spaces. Our flagship is a unique hybrid molecular beam epitaxy technique capable of manipulating and building artificial materials with atomic scale controllability, supported by various other advanced tools. With these unique capabilities, we investigate various thin film quantum materials including topological insulators, topological superconductors, topologial quantum computers, Weyl/Dirac semimetals, materials for quantum computation, 2D materials, complex oxides and their hybrid structures, searching for new physics and applications in the quantum and topological arena.

Revision as of 11:16, 20 May 2022

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Welcome to Quantum and Topology Epitaxy lab!!

We are scientific explorers seeking to discover previously-unknown territories in the quantum and topological phase spaces. Our flagship is a unique hybrid molecular beam epitaxy technique capable of manipulating and building artificial materials with atomic scale controllability, supported by various other advanced tools. With these unique capabilities, we investigate various thin film quantum materials including topological insulators, topological superconductors, topologial quantum computers, Weyl/Dirac semimetals, materials for quantum computation, 2D materials, complex oxides and their hybrid structures, searching for new physics and applications in the quantum and topological arena.