Junpeng Hou
University of Texas at Dallas
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Publication
Featured researches published by Junpeng Hou.
Physical Review Letters | 2018
Haiping Hu; Fan Zhang; Chuanwei Zhang; Junpeng Hou
The recent discovery of triply degenerate points (TDPs) in topological materials has opened a new perspective toward the realization of novel quasiparticles without counterparts in quantum field theory. The emergence of such protected nodes is often attributed to spin-vector-momentum couplings. We show that the interplay between spin-tensor- and spin-vector-momentum couplings can induce three types of TDPs, classified by different monopole charges (C=±2, ±1, 0). A Zeeman field can lift them into Weyl points with distinct numbers and charges. Different TDPs of the same type are connected by intriguing Fermi arcs at surfaces, and transitions between different types are accompanied by level crossings along high-symmetry lines. We further propose an experimental scheme to realize such TDPs in cold-atom optical lattices. Our results provide a framework for studying spin-tensor-momentum coupling-induced TDPs and other exotic quasiparticles.
Physical Review A | 2017
Junpeng Hou; X. Luo; Kuei Sun; Chuanwei Zhang
The ability to generate and tune quantized persistent supercurrents is crucial for building superconducting or atomtronic devices with novel functionalities. In ultracold atoms, previous methods for generating quantized supercurrents are generally based on dynamical processes to prepare atoms in metastable excited states. Here we show that arbitrary quantized circulation states can be adiabatically prepared and tuned as the ground state of a ring-shaped Bose-Einstein condensate by utilizing spin-orbital-angular-momentum (SOAM) coupling and an external potential. There exists superfluid hysteresis for tuning supercurrents between different quantization values with nonlinear atomic interactions, which is explained by developing a nonlinear Landau-Zener theory. Our work will provide a powerful platform for studying SOAM coupled ultracold atomic gases and building novel atomtronic circuits.
EPL | 2018
Junpeng Hou; X. Luo; Kuei Sun; Chuanwei Zhang
Since the recent experimental realization of synthetic Rashba spin-orbit coupling paved a new avenue for exploring and engineering topological phases in ultracold atoms, a precise, solid detection of Berry phase has been desired for unequivocal characterization of system topology. Here, we propose a scheme to conduct momentum-space Aharonov-Bohm interferometry in a Rashba spin-orbit coupled Bose-Einstein condensate with a sudden change of in-plane Zeeman field, capable of measuring the Berry phase of Rashba energy bands. We find that the Berry phase with the presence of a Dirac point is directly revealed by a robust dark interference fringe, and that as a function of external Zeeman field is characterized by the contrast of fringes. We also build a variational model describing the interference process with semiclassical equations of motion of essential dynamical quantities, which lead to agreeable trajectories and geometric phases with the real-time simulation of Gross-Pitaevskii equation. Our study would provide timely guidance for the experimental detection of Berry phase in ultracold atomic systems and help further investigation on their interference dynamics in momentum space.
arXiv: Quantum Gases | 2018
Junpeng Hou; Haiping Hu; Chuanwei Zhang
arXiv: Quantum Gases | 2018
Thomas M. Bersano; Junpeng Hou; Sean Mossman; Vandna Gokhroo; X. Luo; Kuei Sun; Chuanwei Zhang; Peter Engels
arXiv: Mesoscale and Nanoscale Physics | 2018
Junpeng Hou; Zhitong Li; X. Luo; Qing Gu; Chuanwei Zhang
Physical Review Letters | 2018
Junpeng Hou; X. Luo; Kuei Sun; Thomas M. Bersano; Vandna Gokhroo; Sean Mossman; Peter Engels; Chuanwei Zhang
Physical Review Letters | 2018
Junpeng Hou; Haiping Hu; Kuei Sun; Chuanwei Zhang
Bulletin of the American Physical Society | 2018
Junpeng Hou; Tian-sheng Zeng; Haiping Hu; Chuanwei Zhang
Bulletin of the American Physical Society | 2018
Junpeng Hou; Haiping Hu; Kuei Sun; Chuanwei Zhang