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Dive into the research topics where Ying-Hai Wu is active.

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Featured researches published by Ying-Hai Wu.


Physical Review X | 2016

Bound States in Boson Impurity Models

Tao Shi; Ying-Hai Wu; Alejandro Gonzalez-Tudela; J. Ignacio Cirac

The formation of bound states involving multiple particles underlies many interesting quantum physical phenomena, such as Efimov physics or superconductivity. In this work we show the existence of an infinite number of such states for some boson impurity models. They describe free bosons coupled to an impurity and include some of the most representative models in quantum optics. We also propose a family of wavefunctions to describe the bound states and verify that it accurately characterizes all parameter regimes by comparing its predictions with exact numerical calculations for a one-dimensional tight-binding Hamiltonian. For that model, we also analyze the nature of the bound states by studying the scaling relations of physical quantities such as the ground state energy and localization length, and find a non-analytical behavior as a function of the coupling strength. Finally, we discuss how to test our theoretical predictions in experimental platforms such as photonic crystal structures and cold atoms in optical lattices.


Physical Review Letters | 2013

Role of Exciton Screening in the 7 / 3 Fractional Quantum Hall Effect

Ajit C. Balram; Ying-Hai Wu; G. J. Sreejith; Arkadiusz Wojs; Jainendra K. Jain

The excitations of the 7/3 fractional Hall state, one of the most prominent states in the second Landau level, are not understood. We study the effect of screening by composite fermion excitons and find that it causes a strong renormalization at 7/3, thanks to a relatively small exciton gap and a relatively large residual interaction between composite fermions. The excitations of the 7/3 state are to be viewed as composite fermions dressed by a large exciton cloud. Their wide extent has implications for experiments as well as for analysis of finite system exact diagonalization studies.


Physical Review B | 2012

Adiabatic continuity between Hofstadter and Chern insulator states

Ying-Hai Wu; Jainendra K. Jain; Kai Sun

We show that the topologically nontrivial bands of Chern insulators are adiabatic cousins of the Landau bands of Hofstadter lattices. We demonstrate adiabatic connection also between several familiar fractional quantum Hall states on Hofstadter lattices and the fractional Chern insulator states in partially filled Chern bands, which implies that they are in fact different manifestations of the same phase. This adiabatic path provides a way of generating many more fractional Chern insulator states and helps clarify that nonuniformity in the distribution of the Berry curvature is responsible for weakening or altogether destroying fractional topological states.


Physical Review B | 2017

The enigma of the. nu=2+3/ 8 fractional quantum Hall effect

Jimmy A. Hutasoit; Ajit C. Balram; Sutirtha Mukherjee; Ying-Hai Wu; Sudhansu S. Mandal; Arkadiusz Wojs; Vadim Cheianov; Jainendra K. Jain

The fractional quantum Hall effect at


Physical Review A | 2017

Fractional quantum Hall states of bosons on cones

Ying-Hai Wu; Hong-Hao Tu; Sreejith Ganesh Jaya

\nu=2+3/8


Physical Review B | 2016

Topological phases of two-component bosons in species-dependent artificial gauge potentials

Ying-Hai Wu; Tao Shi

, which has been definitively observed, is one of the last fractions for which no viable explanation has so far been demonstrated. Our detailed study suggests that it belongs to a new class of of exotic states described by the Bonderson-Slingerland wave function. Its excitations are non-Abelian anyons similar to those of the well studied Pfaffian state at 5/2, but its wave function has a more complex structure. Using the effective edge theory, we make predictions for various measurable quantities that should enable a confirmation of the underlying topological order of this state.


New Journal of Physics | 2018

Effective many-body Hamiltonians of qubit-photon bound states

Tao Shi; Ying-Hai Wu; Alejandro Gonzalez-Tudela; J. I. Cirac

Motivated by a recent experiment, which synthesizes Landau levels for photons on cones [Schine et al., Nature (London) 534, 671 (2016)], and more generally the interest in understanding gravitational responses of quantum Hall states, we study fractional quantum Hall states of bosons on cones. A variety of trial wave functions for conical systems are constructed and compared with exact diagonalization results. The tip of a cone is a localized geometrical defect with singular curvature, which can modify the density profiles of quantum Hall states. The density profiles on cones can be used to extract some universal information about quantum Hall states. The values of certain quantities are computed numerically using the density profiles of some quantum Hall states and they agree with analytical predictions.


Physical Review B | 2017

Chiral spin condensation in a one-dimensional optical lattice

Ying-Hai Wu; Xiaopeng Li; S. Das Sarma

We study bosonic atoms with two internal states in artificial gauge potentials whose strengths are different for the two components. A series of topological phases for such systems is proposed using the composite fermion theory and the parton construction. It is found in exact diagonalization that some of the proposed states may be realized for simple contact interaction between bosons. The ground states and low-energy excitations of these states are modeled using trial wave functions. The effective field theories for these states are also constructed and reveal some interesting properties.


Physical Review B | 2017

Fermionic symmetry-protected topological state in strained graphene

Ying-Hai Wu; Zheng-Xin Liu; Tao Shi; G. J. Sreejith

Quantum emitters (QEs) coupled to structured baths can localize multiple photons around them and form qubit-photon bound states. In the Markovian or weak coupling regime, the interaction of QEs through these single-photon bound states is known to lead to effective many-body QE Hamiltonians with tuneable but yet perturbative interactions. In this work we study the emergence of such models in the non-Markovian or strong coupling regime in different excitation subspaces. The effective models for the non-Markovian regime with up to three excitations are characterized using analytical methods, uncovering the existence of doublons or triplon states. Furthermore, we provide numerical results for systems with multiple excitations and demonstrate the emergence of polariton models with optically tuneable interactions, whose many-body ground state exhibits a superfluid-Mott insulator transition.


Physical Review B | 2016

Possible SU(3) chiral spin liquid on the kagome lattice

Ying-Hai Wu; Hong-Hao Tu

We study a spinor (two-component) Bose gas confined in a one-dimensional double-valley optical lattice which has a double-well structure in momentum space. Based on field theory analysis, it is found that spinor bosons in the double-valley band may form a spin-charge mixed chiral spin quasicondensate under certain conditions. Our numerical calculations in a concrete

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Jainendra K. Jain

Pennsylvania State University

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Arkadiusz Wojs

Wrocław University of Technology

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Ajit C. Balram

Pennsylvania State University

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Jimmy A. Hutasoit

Carnegie Mellon University

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Sudhansu S. Mandal

Indian Association for the Cultivation of Science

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Sutirtha Mukherjee

Indian Association for the Cultivation of Science

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