Intertwined charge and spin density waves in a topological kagome material

Author:

Chen Y.123ORCID,Gaudet J.1456ORCID,Marcus G. G.1,Nomoto T.7ORCID,Chen T.8,Tomita T.8,Ikhlas M.8,Suzuki H. S.8,Zhao Y.456,Chen W. C.45ORCID,Strempfer J.9ORCID,Arita R.710ORCID,Nakatsuji S.187711ORCID,Broholm C.1451ORCID

Affiliation:

1. Johns Hopkins University

2. University of California, Berkeley

3. Lawrence Berkeley National Lab

4. NIST Center for Neutron Research

5. National Institute of Standards and Technology

6. University of Maryland, College Park

7. University of Tokyo

8. University of Tokyo, Kashiwa

9. Argonne National Laboratory

10. RIKEN Center for Emergent Matter Science

11. Canadian Institute for Advanced Research

Abstract

Using neutrons and x rays we show the topological kagome antiferromagnet Mn3Sn for T<285K forms a homogeneous spin and charge ordered state comprising a longitudinally polarized spin density wave with wave vector kβ=kβĉ, a helical modulated version of the room temperature antichiral magnetic order with kχ=kχĉ, and charge density waves with wave vectors 2kβ,2kχ, and kβ+kχ. Though kχ and kβ coincide for 200K<T<230K, they exhibit distinct continuous Tdependencies before locking to commensurate values of kβ=112c* and kχ=548c* at lowT. Density functional theory indicates this complex modulated state may be associated with the nesting of Fermi surfaces from correlated flat kagome bands, which host Weyl nodes that are annihilated as it forms. Published by the American Physical Society 2024

Funder

Energy Frontier Research Centers

U.S. Department of Energy

Office of Science

Basic Energy Sciences

Natural Sciences and Engineering Research Council of Canada

Gordon and Betty Moore Foundation

Japan Science and Technology Corporation

Oak Ridge National Laboratory

National Science Foundation

Argonne National Laboratory

Publisher

American Physical Society (APS)

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