Hunting Majorana Fermions in Kitaev Magnets
Yukitoshi Motome, Joji Nasu

TL;DR
This review discusses the realization of Majorana fermions in Kitaev magnets, focusing on fractional excitations in quantum spin liquids and their potential for topological quantum computing.
Contribution
It provides a comprehensive overview of recent advances in identifying Majorana fermions in Kitaev magnets through numerical and experimental studies.
Findings
Thermal fractionalization reveals distinct signatures of Majorana fermions.
Experimental data supports the presence of fractional excitations in candidate materials.
Numerical solutions at finite temperatures match observed thermodynamic behaviors.
Abstract
A Majorana fermion is a fermionic particle that is its own antiparticle. Since the theoretical discovery in 1937, the exotic particle has long been searched in particle physics. In the last few decades, however, it has attracted renewed interest in condensed matter physics, where it can be realized as an elementary excitation (quasiparticle) in quantum states of matter. In this review, we discuss another platform for Majorana fermions, the quantum spin liquid, in which interacting magnetic moments remain disordered down to the lowest temperature under strong quantum fluctuations. They are characterized by topological entanglement and fractional excitations, whose possible application to topological quantum computation is recently discussed intensively. As a prime candidate for such exotic states, we here focus on the Kitaev magnets, a subgroup of the spin-orbit Mott insulators. After a…
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