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Dive into the research topics where Guanyu Zhu is active.

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Featured researches published by Guanyu Zhu.


Physical Review X | 2016

Measurement Protocol for the Entanglement Spectrum of Cold Atoms

Hannes Pichler; Guanyu Zhu; Alireza Seif; P. Zoller; Mohammad Hafezi

Entanglement, a key aspect of quantum mechanics, is critical to quantum information theory. Researchers theoretically show how cold atoms can be manipulated to measure the entanglement spectrum of a many-body quantum state.


npj Quantum Information | 2018

Hardware-efficient fermionic simulation with a cavity–QED system

Guanyu Zhu; Yigit Subasi; James D. Whitfield; Mohammad Hafezi

In digital quantum simulation of fermionic models with qubits, non-local maps for encoding are often encountered. Such maps require linear or logarithmic overhead in circuit depth which could render the simulation useless, for a given decoherence time. Here we show how one can use a cavity–QED system to perform digital quantum simulation of fermionic models. In particular, we show that highly nonlocal Jordan–Wigner or Bravyi–Kitaev transformations can be efficiently implemented through a hardware approach. The key idea is using ancilla cavity modes, which are dispersively coupled to a qubit string, to collectively manipulate and measure qubit states. Our scheme reduces the circuit depth in each Trotter step of the Jordan–Wigner encoding by a factor of N2, comparing to the scheme for a device with only local connectivity, where N is the number of orbitals for a generic two-body Hamiltonian. Additional analysis for the Fermi–Hubbard model on an N × N square lattice results in a similar reduction. We also discuss a detailed implementation of our scheme with superconducting qubits and cavities.Quantum simulation: it’s easier to simulate fermionic modes in cavity QEDCoupling ancilla modes to a string of qubits in a cavity QED system allows the efficient quantum simulation of fermionic problems. This constitutes a challenge for most existing boson-based platforms for quantum simulation, as simulating a fermionic system require non-local transformations that impose a computational overhead. A team lead by Mohammad Hafezi at the University of Maryland, Los Alamos National Laboratory and Dartmouth College has shown that the collective manipulation and read out of an ensemble of superconducting qubits granted by introducing a dispersive coupling to microwave cavity photons grants access to the generation of non-local operations directly. This digital circuit QED architecture reduces the number of operations necessary to simulate fermionic systems by an amount that scales quadratically in the size of the system, making it more hardware-efficient than existing alternatives.


Physical Review A | 2016

Measurement of many-body chaos using a quantum clock

Guanyu Zhu; Mohammad Hafezi; Tarun Grover


Bulletin of the American Physical Society | 2018

Quantum Origami: Applying Fault-tolerant Transversal Gates and Measuring Topological Order

Guanyu Zhu; Mohammad Hafezi; Maissam Barkeshli


arXiv: Strongly Correlated Electrons | 2018

Instantaneous braids and Dehn twists in topologically ordered states

Guanyu Zhu; Ali Lavasani; Maissam Barkeshli


arXiv: Quantum Physics | 2018

Fast universal logical gates on topologically encoded qubits at arbitrarily large code distances

Guanyu Zhu; Ali Lavasani; Maissam Barkeshli


arXiv: Quantum Physics | 2018

Scale-Invariant Continuous Entanglement Renormalization of a Chern Insulator.

Su-Kuan Chu; Guanyu Zhu; James R. Garrison; Zachary Eldredge; Ana Valdés Curiel; Przemyslaw Bienias; I. B. Spielman; Alexey V. Gorshkov


Physical Review Letters | 2018

Optical Lattice with Torus Topology

Hwanmun Kim; Guanyu Zhu; J. V. Porto; Mohammad Hafezi


Physical Review B | 2018

Optical control over bulk excitations in fractional quantum Hall systems

Tobias Graß; Michael Gullans; Przemyslaw Bienias; Guanyu Zhu; Areg Ghazaryan; Pouyan Ghaemi; Mohammad Hafezi


Archive | 2018

Universal Fault-Tolerant Logical Gates with Constant Time Overhead for Quantum Computation

Guanyu Zhu; Ali Lavasani; Maissam Barkeshli

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Maissam Barkeshli

Massachusetts Institute of Technology

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Rex Lundgren

University of Texas at Austin

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Hannes Pichler

Austrian Academy of Sciences

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P. Zoller

Austrian Academy of Sciences

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Abolhassan Vaezi

Massachusetts Institute of Technology

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I. B. Spielman

National Institute of Standards and Technology

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