Curriculum Vitaes

Takafumi Suzuki

  (鈴木 隆史)

Profile Information

Affiliation
Graduate School of Engineering, University of Hyogo
Degree
Doctor of Philosophy in Engineering(Oct, 2005, Osaka University)

Contact information
takafumi-seng.u-hyogo.ac.jp
J-GLOBAL ID
201801021278662239
researchmap Member ID
B000310103

External link

Papers

 57
  • Huan-Kuang Wu, Takafumi Suzuki, Naoki Kawashima, Wei-Lin Tu
    Physical Review Research, 6(2) 023297-023297, Jun 20, 2024  Peer-reviewedCorresponding author
    In this work, we study two different quantum simulators composed of molecules with dipole-dipole interaction through various theoretical and numerical tools. Our first result provides knowledge of the quantum order by disorder effect of the S=1/2 system, which is programmable in a quantum simulator composed of circular Rydberg atoms in the triangular optical lattice with a controllable diagonal anisotropy. When the numbers of up spins and down spins are equal, a set of subextensive degenerate ground states is present in the classical limit, composed of continuous strings whose configuration enjoys a large degree of freedom. Among all possible configurations, we focus on the stripe (up and down spins aligning straightly) and kinked (up and down spins forming zigzag spin chains) patterns. Adopting the the real space perturbation theory, we estimate the leading order energy correction when the nearest-neighbor spin exchange coupling, J, is considered, and the overall model becomes an effective XXZ model with a spatial anisotropy. Our calculation demonstrates a lifting of the degeneracy, favoring the stripe configuration. When J becomes larger, we adopt the infinite projected entangled-pair state (iPEPS) and numerically check the effect of degeneracy lifting. The iPEPS results show that even when the spin exchange coupling is strong the stripe pattern is still favored. Next, we study the dipolar bosonic model with tilted polar angle which can be realized through a quantum simulator composed of cold atomic gas with dipole-dipole interaction in an optical lattice. By placing the atoms in a triangular lattice and tilting the polar angle, the diagonal anisotropy can also be realized in the bosonic system. With our cluster mean-field theory calculation, we provide various phase diagrams with different tilted angles, showing the abundant underlying phases including the supersolid. Our proposal indicates realizable scenarios through quantum simulators in studying the quantum effect as well as extraordinary phases. We believe that our results indicated here can also become a good benchmark for two-dimensional quantum simulators. Published by the American Physical Society 2024
  • Matthias Gohlke, Jose Carlos Pelayo, Takafumi Suzuki
    Physical Review B, 109(22) L220410-L220410, Jun 20, 2024  Peer-reviewedCorresponding author
    The characterization of quantum spin liquid phases in Kitaev materials has been a subject of intensive studies over the recent years, both theoretically and experimentally. Most theoretical studies have focused on an isotropically interacting model with its coupling strength being equivalent on each bond in an attempt to simplify the problem. In this Letter, we study an extended spin-1/2 Kitaev-Γ model on a honeycomb lattice with an additional tuning parameter that controls the coupling strength on one of the bonds: We connect the limit of isolated Kitaev-Γ chains, which is known to exhibit an emergent SU(2)1 Tomonaga-Luttinger liquid phase [Yang , ], to the two-dimensional model. We report on an instance, in which properties of the Tomonaga-Luttinger liquid persist for finite interchain coupling forming a phase we call the proximate Tomonaga-Luttinger liquid (pTLL). This pTLL is strongly anisotropic in character analogous to , and features spinon-like excitations similar to those of the antiferromagnetic Heisenberg chain. We use numerical exact diagonalization and density matrix renormalization group on various cluster geometries in a complementary way to overcome finite-size limitations. Published by the American Physical Society 2024
  • Hyun-Yong Lee, Takafumi Suzuki, Yong Baek Kim, Naoki Kawashima
    Physical Review B, 104(2) 024417-024417, Jul 13, 2021  Peer-reviewedCorresponding author
  • Takafumi Suzuki, Takuto Yamada, Sei-ichiro Suga
    Physical Review B, 103(22) 224425-224425, Jun 21, 2021  Peer-reviewedLead author
  • Takuto Yamada, Takafumi Suzuki, Sei-ichiro Suga
    Physical Review B, 102(2) 024415-024415, Jul 13, 2020  Peer-reviewedCorresponding author

Misc.

 20

Professional Memberships

 1

Research Projects

 8