Vacancy-induced low-energy density of states in the Kitaev spin liquid
Wen-Han Kao, Johannes Knolle, G\'abor B. Hal\'asz, Roderich Moessner, and Natalia B. Perkins

TL;DR
This paper shows that vacancies in the Kitaev spin liquid model create low-energy Majorana modes, explaining experimental specific heat behavior in the candidate material H$_{3}$LiIr$_{2}$O$_{6}$ and exploring effects of magnetic fields.
Contribution
It demonstrates how vacancies induce low-energy states in the Kitaev model and analyzes their impact on thermodynamic properties and magnetic responses.
Findings
Vacancies cause a pileup of low-energy Majorana modes.
Vacancy effects are detectable at low concentrations and insensitive to vacancy type.
Magnetic fields can suppress low-temperature specific heat via flux-sector transitions.
Abstract
The Kitaev honeycomb model has attracted significant attention due to its exactly solvable spin-liquid ground state with fractionalized Majorana excitations and its possible materialization in magnetic Mott insulators with strong spin-orbit couplings. Recently, the 5d-electron compound HLiIrO has shown to be a strong candidate for Kitaev physics considering the absence of any signs of a long-range ordered magnetic state. In this work, we demonstrate that a finite density of random vacancies in the Kitaev model gives rise to a striking pileup of low-energy Majorana eigenmodes and reproduces the apparent power-law upturn in the specific heat measurements of HLiIrO. Physically, the vacancies can originate from various sources such as missing magnetic moments or the presence of non-magnetic impurities (true vacancies), or from local weak couplings of…
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