The wave nature of a Mott insulator

Fuente: arXiv
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Autori principali: Yu, Xudong, Wu, Chengyang, Chen, Wenhan, Zhuravlev, Igor, Wang, Zekui, Zeng, Yi, Dhar, Sudipta, Horvath, Milena, Giamarchi, Thierry, Landini, Manuele, Nägerl, Hanns-Christoph, Yao, Hepeng, Guo, Yanliang
Natura: Preprint
Pubblicazione: 2026
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author Yu, Xudong
Wu, Chengyang
Chen, Wenhan
Zhuravlev, Igor
Wang, Zekui
Zeng, Yi
Dhar, Sudipta
Horvath, Milena
Giamarchi, Thierry
Landini, Manuele
Nägerl, Hanns-Christoph
Yao, Hepeng
Guo, Yanliang
author_facet Yu, Xudong
Wu, Chengyang
Chen, Wenhan
Zhuravlev, Igor
Wang, Zekui
Zeng, Yi
Dhar, Sudipta
Horvath, Milena
Giamarchi, Thierry
Landini, Manuele
Nägerl, Hanns-Christoph
Yao, Hepeng
Guo, Yanliang
contents Quantum phases of matter are routinely identified by coherence features, with interference patterns being one of the most directly observable quantities. In lattices, the superfluid-to-Mott-insulator (SF-MI) transition is commonly viewed as a change from wave-like coherence to particle-like localization: interference peaks are taken as a hallmark of superfluidity, whereas their disappearance is used to diagnose insulating behavior. Here, we challenge this picture for one-dimensional (1D) strongly interacting gases subject to a lattice potential. We realize a gapped Mott insulator through pinning in a shallow lattice and find that pronounced interference peaks persist deep in the insulating regime. Strikingly, the interference becomes stronger as the Mott fraction increases, demonstrating that a certain degree of coherence still exists in the insulator state. Measurements of the one-body correlation function reveal an oscillatory, exponentially decaying coherence pattern across several lattice sites, in quantitative agreement with quantum Monte Carlo (QMC) simulations. Our work shows that interference does not uniquely diagnose superfluidity and it exposes the unexpected wave nature of a 1D Mott insulator.
format Preprint
id arxiv_https___arxiv_org_abs_2605_12322
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The wave nature of a Mott insulator
Yu, Xudong
Wu, Chengyang
Chen, Wenhan
Zhuravlev, Igor
Wang, Zekui
Zeng, Yi
Dhar, Sudipta
Horvath, Milena
Giamarchi, Thierry
Landini, Manuele
Nägerl, Hanns-Christoph
Yao, Hepeng
Guo, Yanliang
Quantum Gases
Quantum phases of matter are routinely identified by coherence features, with interference patterns being one of the most directly observable quantities. In lattices, the superfluid-to-Mott-insulator (SF-MI) transition is commonly viewed as a change from wave-like coherence to particle-like localization: interference peaks are taken as a hallmark of superfluidity, whereas their disappearance is used to diagnose insulating behavior. Here, we challenge this picture for one-dimensional (1D) strongly interacting gases subject to a lattice potential. We realize a gapped Mott insulator through pinning in a shallow lattice and find that pronounced interference peaks persist deep in the insulating regime. Strikingly, the interference becomes stronger as the Mott fraction increases, demonstrating that a certain degree of coherence still exists in the insulator state. Measurements of the one-body correlation function reveal an oscillatory, exponentially decaying coherence pattern across several lattice sites, in quantitative agreement with quantum Monte Carlo (QMC) simulations. Our work shows that interference does not uniquely diagnose superfluidity and it exposes the unexpected wave nature of a 1D Mott insulator.
title The wave nature of a Mott insulator
topic Quantum Gases
url https://arxiv.org/abs/2605.12322