Xia, Y. et al. Superconductivity in twisted bilayer WSe2. Nature 637, 2025–838 (2025).
Google Scholar
Guo, Y. et al. Superconductivity in 5.0° twisted bilayer WSe2. Nature 637, 839–845 (2025).
Google Scholar
Cao, Y. et al. Correlated insulator behaviour at half-filling in magic-angle graphene superlattices. Nature 556, 80–84 (2018).
Google Scholar
Yankowitz, M. et al. Tuning superconductivity in twisted bilayer graphene. Science 363, 1059–1064 (2019).
Google Scholar
Lu, X. et al. Superconductors, orbital magnets and correlated states in magic-angle bilayer graphene. Nature 574, 653–657 (2019).
Google Scholar
Park, J. M., Cao, Y., Watanabe, K., Taniguchi, T. & Jarillo-Herrero, P. Tunable strongly coupled superconductivity in magic-angle twisted trilayer graphene. Nature 590, 249–255 (2021).
Google Scholar
Hao, Z. et al. Electric field–tunable superconductivity in alternating-twist magic-angle trilayer graphene. Science 371, 1133–1138 (2021).
Google Scholar
Zhou, H., Xie, T., Taniguchi, T., Watanabe, K. & Young, A. F. Superconductivity in rhombohedral trilayer graphene. Nature 598, 434–438 (2021).
Google Scholar
Zhou, H. et al. Isospin magnetism and spin-polarized superconductivity in Bernal bilayer graphene. Science 375, 774–778 (2022).
Google Scholar
Zhang, Y. et al. Enhanced superconductivity in spin–orbit proximitized bilayer graphene. Nature 613, 268–273 (2023).
Google Scholar
Li, C. et al. Tunable superconductivity in electron- and hole-doped Bernal bilayer graphene. Nature 631, 300–306 (2024).
Google Scholar
Holleis, L. et al. Nematicity and orbital depairing in superconducting Bernal bilayer graphene. Nat. Phys. 21, 444–450 (2025).
Google Scholar
Choi, Y. et al. Superconductivity and quantized anomalous Hall effect in rhombohedral graphene. Nature 639, 342–347 (2025).
Google Scholar
Patterson, C. L. et al. Superconductivity and spin canting in spin–orbit-coupled trilayer graphene. Nature 641, 632–638 (2025).
Google Scholar
Han, T. et al. Signatures of chiral superconductivity in rhombohedral graphene. Nature 643, 654–661 (2025).
Google Scholar
Wang, L. et al. Correlated electronic phases in twisted bilayer transition metal dichalcogenides. Nat. Mater. 19, 861–866 (2020).
Google Scholar
Tang, Y. et al. Simulation of Hubbard model physics in WSe2/WS2 moiré superlattices. Nature 579, 353–358 (2020).
Google Scholar
Regan, E. C. et al. Mott and generalized Wigner crystal states in WSe2/WS2 moiré superlattices. Nature 579, 359–363 (2020).
Google Scholar
Li, H. et al. Imaging two-dimensional generalized Wigner crystals. Nature 597, 650–654 (2021).
Google Scholar
Xu, Y. et al. Correlated insulating states at fractional fillings of moiré superlattices. Nature 587, 214–218 (2020).
Google Scholar
Anderson, E. et al. Programming correlated magnetic states with gate-controlled moiré geometry. Science 381, 325–330 (2023).
Google Scholar
Li, T. et al. Quantum anomalous Hall effect from intertwined moiré bands. Nature 600, 641–646 (2021).
Google Scholar
Foutty, B. A. et al. Mapping twist-tuned multiband topology in bilayer WSe2. Science 384, 343–347 (2024).
Google Scholar
Cai, J. et al. Signatures of fractional quantum anomalous Hall states in twisted MoTe2. Nature 622, 63–68 (2023).
Google Scholar
Zeng, Y. et al. Thermodynamic evidence of fractional Chern insulator in moiré MoTe2. Nature 622, 69–73 (2023).
Google Scholar
Park, H. et al. Observation of fractionally quantized anomalous Hall effect. Nature 622, 74–79 (2023).
Google Scholar
Xu, F. et al. Observation of integer and fractional quantum anomalous Hall effects in twisted bilayer MoTe2. Phys. Rev. X 13, 031037 (2023).
Google Scholar
Xia, Y. et al. Bandwidth-tuned Mott transition and superconductivity in moiré WSe2. Nature 650, 585–591 (2026).
Google Scholar
Arp, T. et al. Intervalley coherence and intrinsic spin–orbit coupling in rhombohedral trilayer graphene. Nat. Phys. 20, 1413–1420 (2024).
Google Scholar
Yang, J. et al. Impact of spin–orbit coupling on superconductivity in rhombohedral graphene. Nat. Mater. 24, 1058–1065 (2025).
Google Scholar
Zhang, Y. et al. Twist-programmable superconductivity in spin–orbit-coupled bilayer graphene. Nature 641, 625–631 (2025).
Google Scholar
Fischer, A. et al. Theory of intervalley-coherent AFM order and topological superconductivity in tWSe2. Phys. Rev. X 15, 041055 (2025).
Google Scholar
Xie, F. et al. Superconductivity in twisted WSe2 from topology-induced quantum fluctuations. Phys. Rev. Lett. 134, 136503 (2025).
Google Scholar
Qin, W., Qiu, W.-X. & Wu, F. Topological chiral superconductivity mediated by intervalley antiferromagnetic fluctuations in twisted bilayer WSe2. Phys. Rev. Lett. 135, 246002 (2025).
Google Scholar
Klebl, L., Fischer, A., Classen, L., Scherer, M. M. & Kennes, D. M. Competition of density waves and superconductivity in twisted tungsten diselenide. Phys. Rev. Res. 5, L012034 (2023).
Google Scholar
Chubukov, A. V. & Varma, C. M. Quantum criticality and superconductivity in twisted transition metal dichalcogenides. Phys. Rev. B 111, 014507 (2026).
Google Scholar
Yang, H.-J. & Hsu, Y.-T. Displacement-field-driven transition between superconductivity and valley ferromagnetism in transition metal dichalcogenides. Preprint at https://arxiv.org/abs/2508.21119 (2025).
Christos, M., Bonetti, P. M. & Scheurer, M. S. Approximate symmetries, insulators, and superconductivity in the Continuum-model description of twisted WSe2. Phys. Rev. Lett. 135, 046503 (2025).
Google Scholar
Zhu, J., Chou, Y.-Z., Xie, M. & Sarma, S. D. Superconductivity in twisted transition metal dichalcogenide homobilayers. Phys. Rev. B 111, L060501 (2025).
Google Scholar
Wu, F., Lovorn, T., Tutuc, E., Martin, I. & MacDonald, A. H. Topological insulators in twisted Transition metal dichalcogenide homobilayers. Phys. Rev. Lett. 122, 086402 (2019).
Google Scholar
Crépel, V. & Millis, A. Bridging the small and large in twisted transition metal dichalcogenide homobilayers: a tight binding model capturing orbital interference and topology across a wide range of twist angles. Phys. Rev. Res. 6, 033127 (2024).
Google Scholar
Ghiotto, A. et al. Stoner instabilities and ising excitonic states in twisted transition metal dichalcogenides. Preprint at https://arxiv.org/abs/2405.17316 (2024).
Zang, J., Wang, J., Cano, J. & Millis, A. J. Hartree-Fock study of the moiré Hubbard model for twisted bilayer transition metal dichalcogenides. Phys. Rev. B 104, 075150 (2021).
Google Scholar
Tinkham, M. Introduction to Superconductivity 2nd edn (Dover Publications, 2004).
Uemura, Y. J. Condensation, excitation, pairing, and superfluid density in high-Tc superconductors: the magnetic resonance mode as a roton analogue and a possible spin-mediated pairing. J. Phys. Condens. Matter 16, S4515 (2004).
Google Scholar
Muñoz-Segovia, D., Crépel, V., Queiroz, R. & Millis, A. J. Twist-angle evolution of the intervalley-coherent antiferromagnet in twisted WSe2. Phys. Rev. B 112, 085111 (2025).
Google Scholar
Ryee, S. et al. Site-polarized Mott phases competing with a correlated metal in twisted WSe2. Phys. Rev. B 113, L081106 (2026).
Google Scholar
Pack, J. et al. Charge-transfer contacts for the measurement of correlated states in high-mobility WSe2. Nat. Nanotechnol. 19, 948–954 (2024).
Google Scholar
Wang, L. et al. One-dimensional electrical contact to a two-dimensional material. Science 342, 614–617 (2013).
Google Scholar
Devakul, T., Crépel, V., Zhang, Y. & Fu, L. Magic in twisted transition metal dichalcogenide bilayers. Nat. Commun. 12, 6730 (2021).
Google Scholar
Metzner, W., Salmhofer, M., Honerkamp, C., Meden, V. & Schönhammer, K. Functional renormalization group approach to correlated fermion systems. Rev. Mod. Phys. 84, 299–352 (2012).
Google Scholar
Profe, J., Kennes, D. M. & Klebl, L. divERGe implements various Exact Renormalization Group examples. Preprint at SciPost Physics Codebases https://doi.org/10.21468/SciPostPhysCodeb.26 (2024).
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www.nature.com

