Twist-angle evolution from valley-polarized fractional topological phases to valley-degenerate superconductivity in twisted bilayer MoTe2

Fuente: arXiv
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Main Authors: Sun, Zheng, Xu, Fan, Li, Jiayi, Jiang, Yifan, Gao, Jingjing, Xu, Cheng, Jia, Tongtong, Cheng, Kehao, Zhang, Jinyang, Tian, Wanghao, Watanabe, Kenji, Taniguchi, Takashi, Jia, Jinfeng, Jiang, Shengwei, Zhang, Yang, Zhang, Yuanbo, Lei, Shiming, Liu, Xiaoxue, Li, Tingxin
Format: Preprint
Published: 2026
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author Sun, Zheng
Xu, Fan
Li, Jiayi
Jiang, Yifan
Gao, Jingjing
Xu, Cheng
Jia, Tongtong
Cheng, Kehao
Zhang, Jinyang
Tian, Wanghao
Watanabe, Kenji
Taniguchi, Takashi
Jia, Jinfeng
Jiang, Shengwei
Zhang, Yang
Zhang, Yuanbo
Lei, Shiming
Liu, Xiaoxue
Li, Tingxin
author_facet Sun, Zheng
Xu, Fan
Li, Jiayi
Jiang, Yifan
Gao, Jingjing
Xu, Cheng
Jia, Tongtong
Cheng, Kehao
Zhang, Jinyang
Tian, Wanghao
Watanabe, Kenji
Taniguchi, Takashi
Jia, Jinfeng
Jiang, Shengwei
Zhang, Yang
Zhang, Yuanbo
Lei, Shiming
Liu, Xiaoxue
Li, Tingxin
contents Moiré superlattices formed by semiconducting transition metal dichalcogenides (TMDs) provide a highly tunable platform for investigating strongly correlated and topological quantum phases. As a prototypical example, twisted bilayer MoTe2 (tMoTe2) has been shown to host fractional topological phases, such as zero-field fractional Chern insulators (FCIs) exhibiting fractional quantum anomalous Hall (FQAH) effects. However, how these correlated topological phases evolve with twist angle and compete with other quantum phases in tMoTe2 remains largely unexplored. Here we report a systematic transport study of twist-angle-dependent phase diagrams in tMoTe2 across a range of 3.8°-5.78°, revealing an evolution from fractionalized states of matter with spontaneous valley polarization to valley-degenerate superconductivity. At relatively small twist angles, partially-filled Chern bands of tMoTe2 host FQAH states following the Jain sequence, together with signatures of an anomalous composite Fermi liquid at moiré hole filling factor νh = 1/2. Increasing twist angle progressively suppresses fractional topological phases and reconstructs the half-filled Chern band into symmetry-breaking integer Chern insulating states. At νh = 1, we observe a transition from robust integer quantum anomalous Hall (IQAH) insulators at small angles to displacement-field-tuned, topologically trivial correlated insulators at larger angles. Remarkably, at a twist angle of 5.78°, superconductivity emerges adjacent to the correlated insulating phase, with a phase diagram closely resembling that recently reported in twisted bilayer WSe2 (tWSe2). Our results uncover a unified twist-angle-driven phase evolution linking fractional topology, symmetry breaking, magnetic order, and superconductivity, providing new insight into the emergent quantum phenomena in moiré systems.
format Preprint
id arxiv_https___arxiv_org_abs_2603_16412
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Twist-angle evolution from valley-polarized fractional topological phases to valley-degenerate superconductivity in twisted bilayer MoTe2
Sun, Zheng
Xu, Fan
Li, Jiayi
Jiang, Yifan
Gao, Jingjing
Xu, Cheng
Jia, Tongtong
Cheng, Kehao
Zhang, Jinyang
Tian, Wanghao
Watanabe, Kenji
Taniguchi, Takashi
Jia, Jinfeng
Jiang, Shengwei
Zhang, Yang
Zhang, Yuanbo
Lei, Shiming
Liu, Xiaoxue
Li, Tingxin
Mesoscale and Nanoscale Physics
Moiré superlattices formed by semiconducting transition metal dichalcogenides (TMDs) provide a highly tunable platform for investigating strongly correlated and topological quantum phases. As a prototypical example, twisted bilayer MoTe2 (tMoTe2) has been shown to host fractional topological phases, such as zero-field fractional Chern insulators (FCIs) exhibiting fractional quantum anomalous Hall (FQAH) effects. However, how these correlated topological phases evolve with twist angle and compete with other quantum phases in tMoTe2 remains largely unexplored. Here we report a systematic transport study of twist-angle-dependent phase diagrams in tMoTe2 across a range of 3.8°-5.78°, revealing an evolution from fractionalized states of matter with spontaneous valley polarization to valley-degenerate superconductivity. At relatively small twist angles, partially-filled Chern bands of tMoTe2 host FQAH states following the Jain sequence, together with signatures of an anomalous composite Fermi liquid at moiré hole filling factor νh = 1/2. Increasing twist angle progressively suppresses fractional topological phases and reconstructs the half-filled Chern band into symmetry-breaking integer Chern insulating states. At νh = 1, we observe a transition from robust integer quantum anomalous Hall (IQAH) insulators at small angles to displacement-field-tuned, topologically trivial correlated insulators at larger angles. Remarkably, at a twist angle of 5.78°, superconductivity emerges adjacent to the correlated insulating phase, with a phase diagram closely resembling that recently reported in twisted bilayer WSe2 (tWSe2). Our results uncover a unified twist-angle-driven phase evolution linking fractional topology, symmetry breaking, magnetic order, and superconductivity, providing new insight into the emergent quantum phenomena in moiré systems.
title Twist-angle evolution from valley-polarized fractional topological phases to valley-degenerate superconductivity in twisted bilayer MoTe2
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2603.16412