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Discovery of a topological exciton insulator with tunable momentum order

Authors :
Hossain, Md Shafayat
Cochran, Tyler A.
Jiang, Yu-Xiao
Zhang, Songbo
Wu, Huangyu
Liu, Xiaoxiong
Zheng, Xiquan
Kim, Byunghoon
Cheng, Guangming
Zhang, Qi
Litskevich, Maksim
Zhang, Junyi
Cheng, Zi-Jia
Liu, Jinjin
Yin, Jia-Xin
Yang, Xian P.
Denlinger, Jonathan
Tallarida, Massimo
Dai, Ji
Vescovo, Elio
Rajapitamahuni, Anil
Miao, Hu
Yao, Nan
Peng, Yingying
Yao, Yugui
Wang, Zhiwei
Balicas, Luis
Neupert, Titus
Hasan, M. Zahid
Publication Year :
2023

Abstract

Topology and correlations are fundamental concepts in modern physics, but their simultaneous occurrence within a single quantum phase is exceptionally rare. In this study, we present the discovery of such a phase of matter in Ta2Pd3Te5, a semimetal where the Coulomb interaction between electrons and holes leads to the spontaneous formation of excitonic bound states below T=100 K. Our spectroscopy unveils the development of an insulating gap stemming from the condensation of these excitons, thus giving rise to a highly sought-after correlated quantum phase known as the excitonic insulator. Remarkably, our scanning tunneling microscopy measurements reveal the presence of gapless boundary modes in the excitonic insulator state. Their magnetic field response and our theoretical calculations suggest a topological origin of these modes, rendering Ta2Pd3Te5 as the first experimentally identified topological excitonic insulator in a three-dimensional material not masked by any structural phase transition. Furthermore, our study uncovers a secondary excitonic instability below T=5 K, which differs from the primary one in having finite momentum. We observe unprecedented tunability of its wavevector by an external magnetic field. These findings unlock a frontier in the study of novel correlated topological phases of matter and their tunability.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2312.15862
Document Type :
Working Paper