Disorder-driven non-Anderson transition in a Weyl semimetal

C Cong Li Y Yang Wang J Jianfeng Zhang (Beijing National Laboratory for Condensed Matter Physics) H Hongxiong Liu (Beijing National Laboratory for Condensed Matter Physics) W Wanyu Chen (Department of Applied Physics) G Guowei Liu (Department of Physics) H Hanbin Deng (Department of Physics) T Timur K. Kim (Diamond Light Source) C Craig Polley (Max IV Laboratory, Lund University) B Balasubramanian Thiagarajan (MAX IV Laboratory) J Jiaxin Yin (Department of Physics) Y Youguo Shi (Beijing National Laboratory for Condensed Matter Physics) T Tao Xiang (State Key Laboratory of Bioactive Molecules and Druggability Assessment, and School of Pharmacy, Jinan University, 601 Huangpu Avenue West, Guangzhou 510632, China) O Oscar Tjernberg (Department of Applied Physics)

Abstract

For several decades, it was widely believed that a noninteracting disordered electronic system could only undergo an Anderson metal–insulator transition due to Anderson localization. However, numerous recent theoretical works have predicted the existence of a disorder-driven non-Anderson phase transition that differs from Anderson localization. The frustration lies in the fact that this non-Anderson disorder-driven transition has not yet been experimentally demonstrated in any system. Here, using angle-resolved photoemission spectroscopy, we present a case study of observing the non-Anderson disorder-driven transition by visualizing the electronic structure of the Weyl semimetal NdAlSi on surfaces with varying amounts of disorder. Our observations reveal that strong disorder can effectively suppress all surface states in the Weyl semimetal NdAlSi, including the topological surface Fermi arcs. This disappearance of surface Fermi arcs is associated with the vanishing of the topological invariant, indicating a quantum phase transition from a Weyl semimetal to a diffusive metal. These observations provide direct experimental evidence of the non-Anderson disorder-driven transition occurring in real quantum systems, a finding long anticipated by theoretical physicists.

Article Details

Volume / Issue Vol. 122, Issue 41
Published October 14, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

C

Cong Li

Y

Yang Wang

J

Jianfeng Zhang

Beijing National Laboratory for Condensed Matter Physics

H

Hongxiong Liu

Beijing National Laboratory for Condensed Matter Physics

W

Wanyu Chen

Department of Applied Physics

G

Guowei Liu

Department of Physics

H

Hanbin Deng

Department of Physics

T

Timur K. Kim

Diamond Light Source

C

Craig Polley

Max IV Laboratory, Lund University

B

Balasubramanian Thiagarajan

MAX IV Laboratory

J

Jiaxin Yin

Department of Physics

Y

Youguo Shi

Beijing National Laboratory for Condensed Matter Physics

T

Tao Xiang

State Key Laboratory of Bioactive Molecules and Druggability Assessment, and School of Pharmacy, Jinan University, 601 Huangpu Avenue West, Guangzhou 510632, China

O

Oscar Tjernberg

Department of Applied Physics