张临杰
张临杰 |
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| 教授 | |
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张临杰,二级教授,博士生导师,国家高层次人才,国家重点研发计划首席科学家。 目前主要从事基于里德堡原子电场量子精密测量与传感、超冷里德堡原子量子模拟方面的研究工作。 主持承担国家重点研发计划项目、国家基金重点项目及国家基金重大仪器研制项目等30余项。在Nature Physics、 Science Bulletin、 Phys. Rev. Applied等国内外学术期刊发表论文70余篇,获中国国家发明专利17项,美国发明专利1项,欧盟发明专利1项。2014年荣获山西省教育厅自然科学奖一等奖。2015年获得山西省科学技术奖二等奖。“基于里德堡原子的微波电场精密测量”工作入选教育部2020年度 “中国高校科技十大进展”,入围荣获《Light: Science & Applications》杂志与科学网联合发布的“2020中国光学领域十大社会影响力事件(Light10)”。 |
办公地址:激光光谱研究所208室 电子邮箱:zlj@sxu.edu.cn 办公电话:0351-7018929
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主要社会兼职
山西省先进激光光谱技术创新中心主任,山西省先进激光光谱技术创新团队负责人,中国仪器仪表学会光学工程专委会理事。 近期代表性的论文 n 受邀综述 1. Rydberg atom electric field sensing for metrology, communication and hybrid quantum systems, Science Bulletin 2024, 69, 1515-1535 2. Quantum sensing of microwave electric fields based on Rydberg atoms, Reports on Progress in Physics 2023, 86, 106001 3. 基于里德堡原子的电场精密测量,导航与控制, 2022, 21(5), 162 4. 基于里德堡原子的微波电场量子传感, 山西大学学报(自然科学), 2022, 45(3), 1-11 5. 固态里德堡激子研究进展,计测技术,2025, 45(4), 12-47 n 研究论文 1. Broadband frequency hopping by Rydberg atoms with high orbital angular momentum states Optics Express, 2026, 34(3), 5447 2. Fiber-integrated acousto-optic-modulator-based phase-controlled Rydberg atomic electrometer, Review of Scientific Instruments 97, 074701 (2026) 3. Fast automatic fiber coupling using global optimization algorithms approaching the experimental efficiency limit, Review of Scientific Instruments 97, 023001 (2026) 4. Sub-shot-noise Rydberg EIT spectrum PhotoniX, 2025, 6;54 5. Sagnac-Enhanced Rydberg Superheterodyne Receiver with Dual-Beam Interference Chinese Physics Letter, 2025, 42, 120601 6. Transfer Learning Empowered Multiple-Indicator Optimization Design for Terahertz Quasi-Bound State in the Continuum Biosensors Advaced Science, 2025, 2504855 7. Trap loss spectroscopy of ultra-cold Rydberg atoms involved in microwave fields Optics Express, 2025, 33(4), 7753-7762 8. Radio frequency electric field-enhanced sensing based on the Rydberg atom-based superheterodyne receiver, Optics Letters, 2024, 49(11), 2938-2941 9. Isotropic antenna based on Rydberg atoms Optics Express, 2024, 32(5), 8379 10. Practical ultra-low frequency noise laser system for quantum sensors, EPJ Quantum Technology 2024, 11, 84 11. Image Transmission Utilizing Amplitude Modulation in Rydberg Atomic Antenna, IEEE Photonics Journal, 2024, 16(2), 3000307 12. Enhancing the Sensitivity of Atom-Based Microwave-Field Electrometry Using a Mach-Zehnder Interferometer Physical Review Applied, 2023, 19, 064021 13. Quantum scaling atomic superheterodyne receiver EPJ Quantum Technology, 2023, 10:39 14. Three-dimensional location system based on an L-shaped array of Rydberg atomic receivers Optics Letters, 2023, 15,3945 15. Noise analysis of the atomic superheterodyne receiver based on flat-top laser beams Optics Express, 2023, 31, 19909 16. Dephasing effect of Rydberg states on trap loss spectroscopy of cold atoms JOSA B, 2022 39(8), 2032 17. Theoretical Investigation on the Mechanism and Law of Broadband Terahertz Wave Detection Using Rydberg Quantum State IEEE Photonics Journal, 2022, 14(3), 5931808 18. 基于原子的射频识别标签近场散射场矢量测量 光谱学与光谱分析,2022,42(1), 198 主持科研项目 1. 里德堡激子原子新奇物态的电场传感与测量,国家重点研发计划,2022.11-2027.11,主持人 2. 跨频段微波信号的感知原理与方法,国家自然科学基金重点项目,2025.01-2029.12,主持人 |
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