Spin density wave and van Hove singularity in the kagome metal CeTi3Bi4

P Pyeongjae Park B Brenden R. Ortiz (Materials Science and Technology Division) M Milo Sprague (Department of Physics) A Anup Pradhan Sakhya S Si Athena Chen M Matthias D. Frontzek W Wei Tian (Genomic Analysis Laboratory, Salk Institute for Biological Studies, La Jolla, CA, USA.) R Romain Sibille D Daniel G. Mazzone C Chihiro Tabata K Koji Kaneko L Lisa M. DeBeer-Schmitt M Matthew B. Stone D David S. Parker (Materials Science and Technology Division) G German D. Samolyuk (Materials Science and Technology Division) H Hu Miao (Materials Science and Technology Division) M Madhab Neupane (Department of Physics) A Andrew D. Christianson

Abstract

Abstract Kagome metals with van Hove singularities near the Fermi level can host intriguing quantum phenomena such as chiral loop currents, electronic nematicity, and unconventional superconductivity. However, to our best knowledge, unconventional magnetic states driven by van Hove singularities–like spin-density waves–have not been observed experimentally in kagome metals. Here, we report the magnetic and electronic structure of the layered kagome metal CeTi3Bi4, where Ti kagome electronic structure interacts with a magnetic sublattice of Ce3+ J eff = 1/2 moments. Neutron diffraction reveals an incommensurate spin-density wave ground state of the Ce3+ moments, coexisting with commensurate antiferromagnetic order across most of the temperature-field phase diagram. The commensurate component is preferentially suppressed by thermal fluctuations and magnetic field, yielding a rich phase diagram involving an intermediate single-Q spin-density wave phase. First-principles calculations and angle-resolved photoemission spectroscopy identify van Hove singularities near the Fermi level, with the observed magnetic propagation vectors connecting their high density of states, strongly suggesting a van Hove singularity-assisted spin-density wave. These findings establish kagome metals LnTi3Bi4 as a model platform where the characteristic electronic structure of the kagome lattice plays a pivotal role in magnetic order.

Article Details

Volume / Issue Vol. 16, Issue 1
Published May 12, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (18)

P

Pyeongjae Park

B

Brenden R. Ortiz

Materials Science and Technology Division

M

Milo Sprague

Department of Physics

A

Anup Pradhan Sakhya

S

Si Athena Chen

M

Matthias D. Frontzek

W

Wei Tian

Genomic Analysis Laboratory, Salk Institute for Biological Studies, La Jolla, CA, USA.

R

Romain Sibille

D

Daniel G. Mazzone

C

Chihiro Tabata

K

Koji Kaneko

L

Lisa M. DeBeer-Schmitt

M

Matthew B. Stone

D

David S. Parker

Materials Science and Technology Division

G

German D. Samolyuk

Materials Science and Technology Division

H

Hu Miao

Materials Science and Technology Division

M

Madhab Neupane

Department of Physics

A

Andrew D. Christianson