Evidence for Electron-hole Crystals in a Mott Insulator

Author:

Lu Jiong1ORCID,Novoselov Konstantin1ORCID,Qiu Zhizhan1,Han Yixuan1ORCID,Noori Keian1,Chen Zhaolong1ORCID,Kashchenko Mikhail2,Lin Li3ORCID,Olsen Thomas4ORCID,Li Jing5ORCID,Fang Hanyan1,Lyu Pin6ORCID,Telychko Mykola1ORCID,Gu Xingyu1,Adam Shaffique7ORCID,Quek Su Ying1ORCID,Rodin Aleksandr7ORCID,Neto Antonio Castro1ORCID

Affiliation:

1. National University of Singapore

2. Moscow Institute of Physics and Technology

3. Peking University

4. Technical University of Denmark

5. Beihang University

6. Department of Chemistry, National University of Singapore

7. Yale-NUS College

Abstract

Abstract

Strongly correlated electrons enable the realization of a plethora of quantum states of matter, such as Wigner crystallization, fractional quantum Hall effect, and high-temperature superconductivity. When correlated electrons and holes are allowed to coexist, they become intertwined and fuel the pursuit of quantum excitonic states harbouring counterflow superfluidity1,2 and topological orders with long-range quantum entanglement3,4. While such collective quantum states have been reported in sophisticated multi-layered heterostructures1,2,4–8, realizing and controlling such quantum states in a single natural strongly correlated material has remained challenging due to the fast particle recombination. Here, we report the creation of imbalanced electron-hole crystals in a doped multi-orbital honeycomb Mott insulator, α-RuCl3, through gate-tunable non-invasive van der Waals (vdW) doping from graphene. The absence of layer separation allows the immediate visualization of electron-hole crystals via scanning tunneling microscopy (STM). Real-space imaging reveals two completely different charge orderings at the lower Hubbard band (LHB) and the upper Hubbard band (UHB) energies, whose origin can be attributed to the correlation-driven honeycomb hole crystal composed of hole-rich Ru sites and rotational symmetry breaking paired electron crystal composed of electron-rich Ru-Ru bonds, respectively. Moreover, a gate-induced transition of electron-hole crystals can be directly visualized, further corroborating their nature as correlation-driven charge crystals9. The realization and atom-resolved visualization of imbalanced electron-hole crystals in a doped multi-orbital honeycomb Mott insulator, combined with a gate-tunable electron reservoir, opens new doors in the search for exotic correlated bosonic states within strongly correlated materials5,8,10–12.

Publisher

Research Square Platform LLC

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