Identification of a Kitaev Quantum Spin Liquid by Magnetic Field Angle Dependence
ORAL
Abstract
Quantum spin liquids realize massive entanglement and fractional quasiparticles from localized spins, proposed as an avenue for quantum science and technology. In particular, topological quantum computations are suggested in the non-abelian phase of Kitaev quantum spin liquid with Majorana fermions, and detection of Majorana fermions is one of the most outstanding problems in modern condensed matter physics. Here, we propose a concrete way to identify the non-abelian Kitaev quantum spin liquid by magnetic field angle dependence. Topologically protected critical lines exist on a plane of magnetic field angles, and their shapes are determined by microscopic spin interactions. A chirality operator plays a key role in demonstrating microscopic dependences of the critical lines. We also show that the chirality operator can be used to evaluate topological properties of the non-abelian Kitaev quantum spin liquid without relying on Majorana fermion descriptions. Experimental criteria for the non-abelian spin liquid state are provided for future experiments.
*This work was supported by Institute for Basic Science under Grants No. IBS-R024-D1 (AG), Korea Institute for Advanced Study under Grant No. PG071401 & PG071402 (KH), and NRF of Korea under Grant NRF-2021R1C1C1010429 (AG), NRF-2019M3E4A1080411, and NRF-2020R1A4A3079707 (EGM). Work in Japan was supported by a Grant-in-Aid for Scientific Research on innovative areas "Quantum Liquid Crystals" (JP19H05824) from Japan Society for the Promotion of Science (JSPS), and by JST CREST (JPMJCR19T5).
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Publication: arXiv:2004.06119
Presenters
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Kyusung Hwang
- Korea Inst for Advanced Study