Chen-Yen Lai
University of California, Merced
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Featured researches published by Chen-Yen Lai.
Physical review applied | 2016
Chen-Yen Lai; Chih-Chun Chien
Author(s): Lai, Chen-Yen; Chien, Chih-Chun | Abstract: Memory effects can lead to history-dependent behavior of a system, and they are ubiquitous in our daily life and have broad applications. Here we explore possibilities of generating memory effects in simple isolated quantum systems. By utilizing geometrical effects from a class of lattices supporting flat-bands consisting of localized states, memory effects could be observed in ultracold atoms in optical lattices. As the optical lattice continuously transforms from a triangular lattice into a kagome lattice with a flat band, history-dependent density distributions manifest quantum memory effects even in noninteracting systems, including fermionic as well as bosonic systems in the proper ranges of temperatures. Rapid growth in ultracold technology predicts a bright future for quantum memory-effect systems, and here two prototypical applications of geometry-induced quantum memory effects are proposed: An accelerometer recording the mechanical change rate in a coupled system and a rate-controlled memvalve where the rate of ramping the lattice potential acts as a control of the remnant density in the lattice.
EPL | 2017
Mekena Metcalf; Chen-Yen Lai; Kevin Wright; Chih-Chun Chien
Topological behavior has been observed in quantum systems including ultracold atoms. However, background harmonic traps for cold-atoms hinder direct detection of topological edge states arising at the boundary because the distortion fuses the edge states into the bulk. We propose experimentally feasible protocols to probe localized edge states and dimerization of ultracold fermions. By confining cold-atoms in a ring lattice and changing the boundary condition from periodic to open using an off-resonant laser sheet to cut open the ring, topological edge states can be generated. A lattice in a topological configuration can trap a single particle released at the edge as the system evolves in time. Alternatively, depleting an initially filled lattice away from the boundary reveals the occupied edge states. Signatures of dimerization in the presence of contact interactions can be found in selected correlations as the system boundary suddenly changes from periodic to open and exhibit memory effects of the initial state distinguishing different configurations or phases.
Physical Review A | 2016
Mekena Metcalf; Chen-Yen Lai; Chih-Chun Chien
Hysteresis can be found in driven many-body systems such as magnets and superfluids. Rate-dependent hysteresis arises when a system is driven periodically while relaxing towards equilibrium. A two-state paramagnet driven by an oscillating magnetic field in the relaxation approximation clearly demonstrates rate-dependent hysteresis. A noninteracting atomic Fermi gas in an optical ring potential, when driven by a periodic artificial gauge field and subjected to dissipation, is shown to exhibit hysteresis loops of atomic current due to a competition of the driving time and the relaxation time. This is in contrast to electronic systems exhibiting equilibrium persistent current driven by magnetic flux due to rapid relaxation. Universal behavior of the dissipated energy in one hysteresis loop is observed in both the magnetic and atomic systems, showing linear and inverse-linear dependence on the relaxation time in the strong and weak dissipation regimes. While interactions in general invalidate the framework for rate-dependent hysteresis, an atomic Fermi gas with artificial spin-orbit coupling exhibits hysteresis loops of atomic currents. Cold-atoms in ring-shape potentials are thus promising in demonstrating rate-dependent hysteresis and its associated phenomena.
arXiv: Quantum Gases | 2018
Mekena Metcalf; Chen-Yen Lai; Massimiliano Di Ventra; Chih-Chun Chien
Bulletin of the American Physical Society | 2018
Chen-Yen Lai; Jian-Xin Zhu
Bulletin of the American Physical Society | 2017
Chen-Yen Lai; Chih-Chun Chien
Bulletin of the American Physical Society | 2017
Chen-Yen Lai; Chih-Chun Chien
Bulletin of the American Physical Society | 2017
Mekena Metcalf; Chen-Yen Lai; Chih-Chun Chien
Bulletin of the American Physical Society | 2016
Chih-Chun Chien; Mekena Metcalf; Chen-Yen Lai
Bulletin of the American Physical Society | 2016
Mekena Metcalf; Chih-Chun Chien; Chen-Yen Lai