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  Terminable Transitions in a Topological Fermionic Ladder

He, Y., Kennes, D. M., Karrasch, C., & Rausch, R. (2024). Terminable Transitions in a Topological Fermionic Ladder. Physical Review Letters, 132(13): 136501. doi:10.1103/PhysRevLett.132.136501.

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 Creators:
He, Y.1, 2, Author
Kennes, D. M.1, 3, 4, Author           
Karrasch, C.5, Author
Rausch, R.5, Author
Affiliations:
1Institut für Theorie der Statistischen Physik, RWTH Aachen University and JARA—Fundamentals of Future Information Technology, ou_persistent22              
2Rudolf Peierls Centre for Theoretical Physics, Clarendon Laboratory, ou_persistent22              
3Theory Group, Theory Department, Max Planck Institute for the Structure and Dynamics of Matter, Max Planck Society, ou_2266715              
4Center for Free-Electron Laser Science, ou_persistent22              
5Technische Universität Braunschweig, Institut für Mathematische Physik, ou_persistent22              

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 Abstract: Interacting fermionic ladders are versatile platforms to study quantum phases of matter, such as different types of Mott insulators. In particular, there are D-Mott and S-Mott states that hold preformed fermion pairs and become paired-fermion liquids upon doping (d wave and s wave, respectively). We show that the D-Mott and S-Mott phases are in fact two facets of the same topological phase and that the transition between them is terminable. These results provide a quantum analog of the well-known terminable liquid-to-gas transition. However, the phenomenology we uncover is even richer, as the order of the transition may alternate between continuous and first order, depending on the interaction details. Most importantly, the terminable transition is robust in the sense that it is guaranteed to appear for weak, but arbitrary couplings. We discuss a minimal model where some analytical insights can be obtained, a generic model where the effect persists; and a model-independent field-theoretical study demonstrating the general phenomenon. The role of symmetry and the edge states is briefly discussed. The numerical results are obtained using the variational uniform matrix-product state (VUMPS) formalism for infinite systems, as well as the density-matrix renormalization group (DMRG) algorithm for finite systems.

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Language(s): eng - English
 Dates: 2024-01-242023-03-072024-02-022024-03-272024-03-29
 Publication Status: Issued
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 Rev. Type: Peer
 Identifiers: arXiv: 2302.14085
DOI: 10.1103/PhysRevLett.132.136501
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Project name : We thank Fabian Essler, Sid Parameswaran, Abhishodh Prakash and Limei Xu for discussion. Y. H. and D. M. K. are supported by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under RTG 1995, within the Priority Program SPP 2244 “2DMP” and under Germany’s Excellence Strategy–Cluster of Excellence Matter and Light for Quantum Computing (ML4Q) EXC 2004/1–390534769. We acknowledge support by the Max Planck-New York City Center for Nonequilibrium Quantum Phenomena. The numerical calculations have been partially performed with computing resources granted by RWTH Aachen University under Project No. rwth0726.
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Title: Physical Review Letters
  Abbreviation : Phys. Rev. Lett.
Source Genre: Journal
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Publ. Info: Woodbury, N.Y. : American Physical Society
Pages: - Volume / Issue: 132 (13) Sequence Number: 136501 Start / End Page: - Identifier: ISSN: 0031-9007
CoNE: https://pure.mpg.de/cone/journals/resource/954925433406_1