Successive Orthorhombic Distortions in Kagome Metals by Molecular Orbital Formation

R Ryo Misawa S Shunsuke Kitou (Department of Advanced Materials Science) R Rinsuke Yamada T Tobi Gaggl (Department of Applied Physics and Quantum‐Phase Electronics Center (QPEC) The University of Tokyo Bunkyo‐ku Tokyo 113‐8656 Japan) R Ryota Nakano Y Yudai Shibata (Department of Applied Physics and Quantum‐Phase Electronics Center (QPEC) The University of Tokyo Bunkyo‐ku Tokyo 113‐8656 Japan) Y Yoshihiro Okamura M Markus Kriener (RIKEN Center for Emergent Matter Science (CEMS) Wako Saitama 351‐0198 Japan) P Priya Ranjan Baral Y Yuiga Nakamura (Japan Synchrotron Radiation Research Institute) Y Yoshichika Ōnuki (RIKEN Center for Emergent Matter Science (CEMS) Wako Saitama 351‐0198 Japan) Y Youtarou Takahashi T Taka‐hisa Arima (Department of Advanced Materials Science The University of Tokyo Kashiwa Chiba 277‐8561 Japan) M Milena Jovanovic (Department of Chemistry) L Leslie M. Schoop M Max Hirschberger

Abstract

Abstract The kagome lattice, with its inherent frustration, hosts a plethora of exotic phenomena, including the emergence of 3 q charge‐density‐wave order. The high rotational symmetry required to realize such an unconventional charge order is broken in many kagome materials by orthorhombic distortions at high temperature, the origin of which remains much less examined despite their ubiquity. In this study, synchrotron X‐ray diffraction reveals a structural phase transition from a parent hexagonal structure to an orthorhombic ground state, mediated by a critical regime with diffuse scattering in the prototypical kagome metals R Ru 3 Si 2 ( R = Nd, Pr). Structural analysis uncovers partially ordered bonds between kagome layers in the orthorhombic phases. Accordingly, a short‐range correlated dimer model on the kagome layers reproduces the diffuse scattering, with the short‐range order arising from competing structures induced by the geometrical frustration of the kagome lattice. The observations point to molecular orbital formation between Ru orbitals as the driving force behind the transition, consistent with ab initio calculations. A framework based on electronegativity and a tolerance factor is proposed to evaluate the stability of the hexagonal phase in various kagome metals, guiding the design of highly symmetric materials.

Article Details

Volume / Issue Vol. 38, Issue 8
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (16)

R

Ryo Misawa

S

Shunsuke Kitou

Department of Advanced Materials Science

R

Rinsuke Yamada

T

Tobi Gaggl

Department of Applied Physics and Quantum‐Phase Electronics Center (QPEC) The University of Tokyo Bunkyo‐ku Tokyo 113‐8656 Japan

R

Ryota Nakano

Y

Yudai Shibata

Department of Applied Physics and Quantum‐Phase Electronics Center (QPEC) The University of Tokyo Bunkyo‐ku Tokyo 113‐8656 Japan

Y

Yoshihiro Okamura

M

Markus Kriener

RIKEN Center for Emergent Matter Science (CEMS) Wako Saitama 351‐0198 Japan

P

Priya Ranjan Baral

Y

Yuiga Nakamura

Japan Synchrotron Radiation Research Institute

Y

Yoshichika Ōnuki

RIKEN Center for Emergent Matter Science (CEMS) Wako Saitama 351‐0198 Japan

Y

Youtarou Takahashi

T

Taka‐hisa Arima

Department of Advanced Materials Science The University of Tokyo Kashiwa Chiba 277‐8561 Japan

M

Milena Jovanovic

Department of Chemistry

L

Leslie M. Schoop

M

Max Hirschberger