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Dive into the research topics where Yuhe Zhang is active.

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Featured researches published by Yuhe Zhang.


Physical Review Letters | 2009

Evidence for an Excited-State Efimov Trimer in a Three-Component Fermi Gas

J. R. Williams; E.L. Hazlett; John Huckans; R. W. Stites; Yuhe Zhang; K. M. O'Hara

We observe enhanced three-body recombination in a three-component ;{6}Li Fermi gas attributable to an excited Efimov trimer state intersecting the three-atom scattering threshold near 895 G. From measurements of the recombination rate we determine the Efimov parameters kappa_{*} and eta_{*} for the universal region above 600 G which includes three overlapping Feshbach resonances. The value of kappa_{*} also predicts the locations of loss features previously observed near 130 and 500 G [T. B. Ottenstein, Phys. Rev. Lett. 101, 203202 (2008)10.1103/PhysRevLett.101.203202; J. H. Huckans, Phys. Rev. Lett. 102, 165302 (2009)10.1103/PhysRevLett.102.165302] suggesting they are associated with a ground-state Efimov trimer near threshold. We also report on the realization of a degenerate three-component Fermi gas with approximate SU(3) symmetry.


Physical Review Letters | 2012

Realization of a resonant Fermi gas with a large effective range.

E.L. Hazlett; Yuhe Zhang; R. W. Stites; K. M. O'Hara

We have measured the interaction energy and three-body recombination rate for a two-component Fermi gas near a narrow Feshbach resonance and found both to be strongly energy dependent. Even for de Broglie wavelengths greatly exceeding the van der Waals length scale, the behavior of the interaction energy as a function of temperature cannot be described by atoms interacting via a contact potential. Rather, energy-dependent corrections beyond the scattering length approximation are required, indicating a resonance with an anomalously large effective range. For fields where the molecular state is above threshold, the rate of three-body recombination is enhanced by a sharp, two-body resonance arising from the closed-channel molecular state which can be magnetically tuned through the continuum. This narrow resonance can be used to study strongly correlated Fermi gases that simultaneously have a sizable effective range and a large scattering length.


Physical Review Letters | 2014

Fractional Angular Momentum in Cold-Atom Systems

Yuhe Zhang; G. J. Sreejith; Nathan Gemelke; Jainendra K. Jain

The quantum statistics of bosons or fermions are manifest through the even or odd relative angular momentum of a pair. We show theoretically that, under certain conditions, a pair of certain test particles immersed in a fractional quantum Hall state possesses, effectively, a fractional relative angular momentum, which can be interpreted in terms of fractional braid statistics. We propose that the fractionalization of the angular momentum can be detected directly through the measurement of the pair correlation function in rotating ultracold atomic systems in the fractional quantum Hall regime. Such a measurement will also provide direct evidence for the effective magnetic field resulting from Berry phases arising from attached vortices, and of excitations with a fractional particle number, analogous to the fractional charge of the electron fractional quantum Hall effect.


Physical Review Letters | 2016

Landau-Level Mixing and Particle-Hole Symmetry Breaking for Spin Transitions in the Fractional Quantum Hall Effect.

Yuhe Zhang; Arkadiusz Wojs; Jainendra K. Jain

The spin transitions in the fractional quantum Hall effect provide a direct measure of the tiny energy differences between differently spin-polarized states and thereby serve as an extremely sensitive test of the quantitative accuracy of the theory of the fractional quantum Hall effect, and, in particular, of the role of Landau-level mixing in lifting the particle-hole symmetry. We report on an accurate quantitative study of this physics, evaluating the effect of Landau-level mixing in a nonperturbative manner using a fixed-phase diffusion Montexa0Carlo method. We find excellent agreement between our calculated critical Zeeman energies and the experimentally measured values. In particular, we find, as also do experiments, that the critical Zeeman energies for fractional quantum Hall states at filling factors ν=2-n/(2n±1) are significantly higher than those for ν=n/(2n±1), a quantitative signature of the lifting of particle-hole symmetry due to Landau-level mixing.


Physical Review B | 2015

Creating and manipulating non-Abelian anyons in cold atom systems using auxiliary bosons

Yuhe Zhang; G. J. Sreejith; Jainendra K. Jain

The possibility of realizing bosonic fractional quantum Hall effect in ultracold atomic systems suggests a new route to producing and manipulating anyons, by introducing auxiliary bosons of a different species that capture quasiholes and thus inherit their nontrivial braiding properties. States with localized quasiholes at any desired locations can be obtained by annihilating the auxiliary bosons at those locations. We explore how this method can be used to generate non-Abelian quasiholes of the Moore-Read Pfaffian state for bosons at filling factor


Physical Review B | 2017

Tunnel transport and interlayer excitons in bilayer fractional quantum Hall systems

Yuhe Zhang; Jainendra K. Jain; J. P. Eisenstein

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Physical Review B | 2017

Surprising robustness of particle-hole symmetry for composite-fermion liquids

G. J. Sreejith; Yuhe Zhang; Jainendra K. Jain

. We show that a Hamiltonian with an appropriate three-body interaction can produce two-quasihole states in two distinct fusion channels of the topological ``qubit. Characteristics of these states that are related to the non-Abelian nature can be probed and verified by a measurement of the effective relative angular momentum of the auxiliary bosons, which is directly related to their pair distribution function. Moore-Read states of more than two quasiholes can also be produced in a similar fashion. We investigate some issues related to the experimental feasibility of this approach, in particular, how large the systems should be for a realization of this physics and to what extent this physics carries over to systems with the more standard two-body contact interaction.


Physical Review B | 2014

Theoretical investigation of edge reconstruction in the ν = 5 2 and 7 3 fractional quantum Hall states

Yuhe Zhang; Ying-Hai Wu; Jimmy A. Hutasoit; Jainendra K. Jain

In a bilayer system consisting of a composite-fermion Fermi sea in each layer, the tunnel current is exponentially suppressed at zero bias, followed by a strong peak at a finite bias voltage V_(max). This behavior, which is qualitatively different from that observed for the electron Fermi sea, provides fundamental insight into the strongly correlated non-Fermi liquid nature of the CF Fermi sea and, in particular, offers a window into the short-distance high-energy physics of this state. We identify the exciton responsible for the peak current and provide a quantitative account of the value of V_(max). The excitonic attraction is shown to be quantitatively significant, and its variation accounts for the increase of V_(max) with the application of an in-plane magnetic field. We also estimate the critical Zeeman energy where transition occurs from a fully spin polarized composite fermion Fermi sea to a partially spin polarized one, carefully incorporating corrections due to finite width and Landau level mixing, and find it to be in satisfactory agreement with the Zeeman energy where a qualitative change has been observed for the onset bias voltage [Eisenstein et al., Phys. Rev. B 94, 125409 (2016)]. For fractional quantum Hall states, we predict a substantial discontinuous jump in V_(max) when the system undergoes a transition from a fully spin polarized state to a spin singlet or a partially spin polarized state.


Physical Review Letters | 2018

Crystallization in the Fractional Quantum Hall Regime Induced by Landau-Level Mixing

Jianyun Zhao; Yuhe Zhang; Jainendra K. Jain

We report on fixed phase diffusion Monte Carlo calculations that show that, even for a large amount of Landau level mixing, the energies of the Pfaffian and anti-Pfaffian phases remain very nearly the same, as also do the excitation gaps at


Bulletin of the American Physical Society | 2018

Competition between crystal and fractional quantum Hall liquid in the presence of LL mixing

Jianyun Zhao; Yuhe Zhang; Jainendra K. Jain

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Jainendra K. Jain

Pennsylvania State University

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E.L. Hazlett

Pennsylvania State University

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John Huckans

Pennsylvania State University

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Jimmy A. Hutasoit

Carnegie Mellon University

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R. W. Stites

Pennsylvania State University

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J. R. Williams

Pennsylvania State University

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