L. Yao

Realization of a crosstalk-avoided quantum network node with dual-type qubits by the same ion species

L. Feng [1], Y. -Y Huang, Y. -K. Wu [1,2], W. -X. Guo [1,3], J. -Y. Ma [1,3], H. -X. Yang [3], L. Zhang [1], Y. Wang [1], C. -X. Huang [1], C. Zhang [1], L. Yao [3], B. -X. Qi [1], Y. -F. Pu [1,2], Z. -C. Zhou [1,2], L. -M. Duan [1,2,4]

Abstract

Generating ion-photon entanglement is a crucial step for scalable trapped-ion quantum networks. To avoid the crosstalk on memory qubits carrying quantum information, it is common to use a different ion species for ion-photon entanglement generation such that the scattered photons are far off-resonant for the memory qubits. However, such a dual-species scheme requires elaborate control of the portion and the location of different ion species, and can be subject to inefficient sympathetic cooling. Here we demonstrate a trapped-ion quantum network node in the dual-type qubit scheme where two types of qubits are encoded in the $S$ and $F$ hyperfine structure levels of ${}^{171}\mathrm{Yb}^+$ ions. We generate ion photon entanglement for the $S$-qubit in a typical timescale of hundreds of milliseconds, and verify its small crosstalk on a nearby $F$-qubit with coherence time above seconds. Our work demonstrates an enabling function of the dual-type qubit scheme for scalable quantum networks.

Experimental realization of a 218-ion multi-qubit quantum memory

R. Yao [1], W. -Q. Lian [2], Y. -K. Wu [1,3], G. -X. Wang [1], B. -W. Li [1], Q. -X. Mei [2], B. -X. Qi [1], L. Yao [2], Z. -C. Zhou [1,3], L. He [1,3], L. -M. Duan [1,3]

Abstract

Storage lifetime and capacity are two important factors to characterize the performance of a quantum memory. Here we report the stable trapping of above 200 ions in a cryogenic setup, and demonstrate the combination of the multi-qubit capacity and long storage lifetime by measuring the coherence time of randomly chosen ions to be on the order of hundreds of milliseconds. We apply composite microwave pulses to manipulate qubit states globally for efficient characterization of different storage units simultaneously, and we compare the performance of the quantum memory with and without the sympathetic cooling laser, thus unambiguously show the necessity of sympathetic cooling for the long-time storage of multiple ionic qubits.

Probing critical behavior of long-range transverse-field Ising model through quantum Kibble-Zurek mechanism

B. -W. Li [1,2], Y. -K. Wu [1,2], Q. -X. Mei [1,3], R. Yao [1,2], W. -Q. Lian [1,3], M. -L. Cai [3], Y. Wang [1,2], B. -X. Qi [1,2], L. Yao [3], L. He [1,2], Z. -C. Zhou [1,2], L. -M. Duan [1,2]

Abstract

The trapped ion quantum simulator has demonstrated qualitative properties of different physical models for up to tens of ions. In particular, a linear ion chain naturally hosts long-range Ising interactions under the laser driving, which has been used for various phenomena such as quantum phase transition, localization, thermalization and information propagation. For near-term practical usage, a central task is to find more quantitative applications of the noisy quantum simulators that are robust to small errors in the parameters. Here we report the quantum simulation of a long-range transverse-field Ising model using up to 61 ions and probe the critical behavior of its quantum phase transition through the Kibble-Zurek mechanism. By calibrating and verifying the coupling coefficients, we realize the same model for increasing ion numbers, so as to extract a critical exponent free of the finite size effect. For ferromagnetic interaction, our experimental result agrees well with the previous numerical predictions. As for the anti-ferromagnetic case, signals are too weak to fit a critical exponent due to the frustration in the interaction, but still consistent with the theory.

Observation of Non-Markovian Spin Dynamics in a Jaynes-Cummings-Hubbard Model using a Trapped-Ion Quantum Simulator

B. -W. Li [1], Q. -X. Mei [1], Y. -K. Wu [1], M. -L. Cai [1,2], Y. Wang [1], L. Yao [1,2], Z. -C. Zhou [1], L. -M. Duan [1]

Abstract

Jaynes-Cummings-Hubbard (JCH) model is a fundamental many-body model for light-matter interaction. As a leading platform for quantum simulation, the trapped ion system has realized the JCH model for two to three ions. Here we report the quantum simulation of the JCH model using up to 32 ions. We verify the simulation results even for large ion numbers by engineering low excitations and thus low effective dimensions; then we extend to 32 excitations for an effective dimension of $2^{77}$, which is difficult for classical computers. By regarding the phonon modes as baths, we explore Markovian or non-Markovian spin dynamics in different parameter regimes of the JCH model, similar to quantum emitters in a structured photonic environment. We further examine the dependence of the non-Markovian dynamics on the effective Hilbert space dimension. Our work demonstrates the trapped ion system as a powerful quantum simulator for many-body physics and open quantum systems.

Observation of Supersymmetry and its Spontaneous Breaking in a Trapped Ion Quantum Simulator

M. -L. Cai [1,2], Y. -K. Wu [1], Q. -X. Mei [1], W. -D. Zhao [1], Y. Jiang [1], L. Yao [1,2], L. He [1], Z. -C. Zhou [1,3], L. -M. Duan [1]

Abstract

Supersymmetry (SUSY) helps solve the hierarchy problem in high-energy physics and provides a natural groundwork for unifying gravity with other fundamental interactions. While being one of the most promising frameworks for theories beyond the Standard Model, its direct experimental evidence in nature still remains to be discovered. Here we report experimental realization of a supersymmetric quantum mechanics (SUSY QM) model, a reduction of the SUSY quantum field theory for studying its fundamental properties, using a trapped ion quantum simulator. We demonstrate the energy degeneracy caused by SUSY in this model and the spontaneous SUSY breaking. By a partial quantum state tomography of the spin-phonon coupled system, we explicitly measure the supercharge of the degenerate ground states, which are superpositions of the bosonic and the fermionic states. Our work demonstrates the trapped-ion quantum simulator as an economic yet powerful platform to study versatile physics in a single well-controlled system.

Quantum Simulation of the Two-Dimensional Weyl Equation in a Magnetic Field

Y. Jiang [1], M. -L. Cai [1,2], Y. -K. Wu [1], Q. -X. Mei [1], W. -D. Zhao [1], X. -Y. Chang [1], L. Yao [1,2], L. He [1], Z. -C. Zhou [1], L. -M. Duan [1]

Abstract

Quantum simulation of 1D relativistic quantum mechanics has been achieved in well-controlled systems like trapped ions, but properties like spin dynamics and response to external magnetic fields that appear only in higher dimensions remain unexplored. Here we simulate the dynamics of a 2D Weyl particle. We show the linear dispersion relation of the free particle and the discrete Landau levels in a magnetic field, and we explicitly measure the spatial and spin dynamics from which the conservation of helicity and properties of antiparticles can be verified. Our work extends the application of an ion trap quantum simulator in particle physics with the additional spatial and spin degrees of freedom.

Observation of topological Euler insulators with a trapped-ion quantum simulator

W. -D. Zhao, Y. -B. Yang, Y. Jiang, Z. -C. Mao, W. -X. Guo, L. -Y. Qiu, G. -X. Wang [1], L. Yao [1], L. He [1], Z. -C. Zhou [1], Y. Xu [1], L. -M. Duan [1]

Abstract

Symmetries play a crucial role in the classification of topological phases of matter. Although recent studies have established a powerful framework to search for and classify topological phases based on symmetry indicators, there exists a large class of fragile topology beyond the description. The Euler class characterizing the topology of two-dimensional real wave functions is an archetypal fragile topology underlying some important properties, such as non-Abelian braiding of crossing nodes and higher-order topology. However, as a minimum model of fragile topology, the two-dimensional topological Euler insulator consisting of three bands remains a significant challenge to be implemented in experiments. Here, we experimentally realize a three-band Hamiltonian to simulate a topological Euler insulator with a trapped-ion quantum simulator. Through quantum state tomography, we successfully evaluate the Euler class, Wilson loop flow and entanglement spectra to show the topological properties of the Hamiltonian. We also measure the Berry phases of the lowest energy band, illustrating the existence of four crossing points protected by the Euler class. The flexibility of the trapped-ion quantum simulator further allows us to probe dynamical topological features including skyrmion-antiskyrmion pairs and Hopf links in momentum-time space from quench dynamics. Our results show the advantage of quantum simulation technologies for studying exotic topological phases and open a new avenue for investigating fragile topological phases in experiments.