4.8 Article

Possible Kitaev Quantum Spin Liquid State in 2D Materials with S=3/2

Journal

PHYSICAL REVIEW LETTERS
Volume 124, Issue 8, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.124.087205

Keywords

-

Funding

  1. Department of Energy, Office of Basic Energy Sciences [DE-SC0002220]
  2. Arkansas Research Alliance
  3. DARPA [HR0011727183-D18AP00010]
  4. Anhui Provincial Natural Science Foundation [1908085MA10]
  5. MEXT of Japan
  6. NSFC [11825403, 11874115]
  7. Program for Professor of Special Appointment (Eastern Scholar)
  8. Qing Nian Ba Jian Program
  9. Fok Ying Tung Education Foundation

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Quantum spin liquids (QSLs) form an extremely unusual magnetic state in which the spins are highly correlated and fluctuate coherently down to the lowest temperatures, but without symmetry breaking and without the formation of any static long-range-ordered magnetism. Such intriguing phenomena are not only of great fundamental relevance in themselves, but also hold promise for quantum computing and quantum information. Among different types of QSLs, the exactly solvable Kitaev model is attracting much attention, with most proposed candidate materials, e.g., RuCl3 and Na2IrO3, having an effective S = 1/2 spin value. Here, via extensive first-principles-based simulations, we report the investigation of the Kitaev physics and possible Kitaev QSL state in epitaxially strained Cr-based monolayers, such as CrSiTe3, that rather possess a S = 3/2 spin value. Our study thus extends the playground of Kitaev physics and QSLs to 3d transition metal compounds.

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