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Atomic and Laser Physics
Credit: Jack Hobhouse

Jinzhao Sun

Schmidt AI in Science Fellow

Research theme

  • Quantum information and computation

Sub department

  • Atomic and Laser Physics

Research groups

  • Frontiers of quantum physics
jinzhao.sun@physics.ox.ac.uk
Clarendon Laboratory
Personal website
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  • About
  • Publications

Low-Overhead Tailoring and Learning of Noise in Graph States

ArXiv 2503.1287 (2025)

Authors:

Guedong Park, Jinzhao Sun, Hyunseok Jeong
Details from ArXiV

Simple and High-Precision Hamiltonian Simulation by Compensating Trotter Error with Linear Combination of Unitary Operations

PRX Quantum American Physical Society (APS) 6:1 (2025) 010359

Authors:

Pei Zeng, Jinzhao Sun, Liang Jiang, Qi Zhao
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Fault-tolerant quantum algorithms for quantum molecular systems: A survey

ArXiv 2502.02139 (2025)

Authors:

Yukun Zhang, Xiaoming Zhang, Jinzhao Sun, Heng Lin, Yifei Huang, Dingshun Lv, Xiao Yuan
Details from ArXiV

Two measurement bases are asymptotically informationally complete for any pure state tomography

ArXiv 2501.17061 (2025)

Authors:

Tianfeng Feng, Tianqi Xiao, Yu Wang, Shengshi Pang, Farhan Hanif, Xiaoqi Zhou, Qi Zhao, MS Kim, Jinzhao Sun
Details from ArXiV

Ferromagnetic interlayer coupling in FeSe1−xSx superconductors revealed by inelastic neutron scattering

Physical Review B (condensed matter and materials physics) American Physical Society 110:17 (2024) 174503

Authors:

Mingwei Ma, Philippe Bourges, Yvan Sidis, Jinzhao Sun, Guoqing Wang, Kazuki Iida, Kazuya Kamazawa, Jitae T Park, Frederic Bourdarot, Zhian Ren, Yuan Li

Abstract:

FeSe1-xSx superconductors are commonly considered layered van der Waals materials with negligible interlayer coupling. Here, using inelastic neutron scattering to study spin excitations in single-crystal samples, we reveal that the magnetic coupling between adjacent Fe layers is ferromagnetic in nature, making the system different from most unconventional superconductors including iron pnictides. The weak interlayer coupling is estimated to be Jc∼ 0.2 meV, in agreement with the short spin-spin correlation length ζc∼0.2c along the c axis. The results provide an experimental basis for establishing a microscopic theoretical model to describe the absence of magnetic order in FeSe1-xSx.
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