王三丹
讲师
邮箱:wangsandan@sxu.edu.cn
个人简介
王三丹,博士,讲师。2023年于PA电子原子与分子物理专业获得理学博士学位,2023年-2025年于PA电子物理学博士后流动站从事博士后研究工作。2025年于PA电子·(中国区)官方网站 版权所有任教至今。主要从事光与原子相互作用、原子非线性测量与调控以及结构光场调控等方面的研究工作。共发表SCI论文13篇,获得授权国家发明专利6项,主持国家资助博士后研究人员计划项目1项。
教学情况
讲授大学物理课程
学术论文
[1] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Trans-spectral transfer of spatio-temporal optical Ferris wheel with nonlinear wave mixing”, Photonics Research 12(11), 2559 (2024).
[2] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “All-optical information conversion in Rb vapor based on the spatial cross-phase modulation”, Optics Express 30(25), 45517 (2022).
[3] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Characterization of rubidium thin cell properties with sandwiched structure using a multipath interferometer with an optical frequency comb”, Optics Letters 46(17), 4284 (2021).
[4] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Measurement of the Kerr nonlinear refractive index of the Rb vapor based on an optical frequency comb using the z-scan method”, Optics Express 28(25), 38334 (2020).
[5] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Investigation on the Cs 6S1/2 to 7D electric quadrupole transition via monochromatic two-photon process at 767 nm”, Frontiers of Physics 16(1), 12502 (2021).
[6] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “A stable frequency standard based on the one-color two-photon 5S - 7S transition of rubidium at 760 nm”, Laser Physics Letters 16, 125204 (2019).
[7] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Investigation on the monochromatic two-photon transition spectroscopy of rubidium by using intensity modulation method”, Journal of the Physical Society of Japan 87, 084301 (2018).
[8] Wei Gao, Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “High-contrast nonlinear spiral phase contrast imaging via four-wave mixing in atomic medium”, Optics Express 33(18), 38382 (2025).
[9] Wanwan Cao, Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Investigation on the pressure broadening of 85Rb 5S1/2 - 5D3/2 monochromatic two-photon transition spectrum by multiple fluorescence detection”, Optics Communications 574, 131071 (2025).
[10] Meiyu Ma, Sandan Wang, Yang Yan, Jinpeng Yuan, Linjie Zhang, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Large power dynamic range microwave electric field sensing in a vapor cell”, Optics Express 32(20), 35202 (2024).
[11] Wei Gao, Sandan Wang, Jinpeng Yuan, Liantuan Xiao, Suotang Jia, and Lirong Wang, “Identification of orbital angular momentum using atom-based spatial self-phase modulation”, Optics Express 31(9), 13528 (2023).
[12] Wei Gao, Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Sensitivity enhancement of nonlinear refractive index measurement by Gaussian-Bessel beam assisted z-scan method”, Optics Express 30(5), 7291 (2022).
[13] Juan Wu, Pengbo Jia, Sandan Wang, Xuewen Wang, Jinpeng Yuan, Lirong Wang, Yi Hu, Zhigang Chen, and Jingjun Xu, “Measuring saturable nonlinearity in atomic vapor via direct spatial mapping”, Optics Express 30(24), 43012 (2022).
[2] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “All-optical information conversion in Rb vapor based on the spatial cross-phase modulation”, Optics Express 30(25), 45517 (2022).
[3] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Characterization of rubidium thin cell properties with sandwiched structure using a multipath interferometer with an optical frequency comb”, Optics Letters 46(17), 4284 (2021).
[4] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Measurement of the Kerr nonlinear refractive index of the Rb vapor based on an optical frequency comb using the z-scan method”, Optics Express 28(25), 38334 (2020).
[5] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Investigation on the Cs 6S1/2 to 7D electric quadrupole transition via monochromatic two-photon process at 767 nm”, Frontiers of Physics 16(1), 12502 (2021).
[6] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “A stable frequency standard based on the one-color two-photon 5S - 7S transition of rubidium at 760 nm”, Laser Physics Letters 16, 125204 (2019).
[7] Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Investigation on the monochromatic two-photon transition spectroscopy of rubidium by using intensity modulation method”, Journal of the Physical Society of Japan 87, 084301 (2018).
[8] Wei Gao, Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “High-contrast nonlinear spiral phase contrast imaging via four-wave mixing in atomic medium”, Optics Express 33(18), 38382 (2025).
[9] Wanwan Cao, Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Investigation on the pressure broadening of 85Rb 5S1/2 - 5D3/2 monochromatic two-photon transition spectrum by multiple fluorescence detection”, Optics Communications 574, 131071 (2025).
[10] Meiyu Ma, Sandan Wang, Yang Yan, Jinpeng Yuan, Linjie Zhang, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Large power dynamic range microwave electric field sensing in a vapor cell”, Optics Express 32(20), 35202 (2024).
[11] Wei Gao, Sandan Wang, Jinpeng Yuan, Liantuan Xiao, Suotang Jia, and Lirong Wang, “Identification of orbital angular momentum using atom-based spatial self-phase modulation”, Optics Express 31(9), 13528 (2023).
[12] Wei Gao, Sandan Wang, Jinpeng Yuan, Lirong Wang, Liantuan Xiao, and Suotang Jia, “Sensitivity enhancement of nonlinear refractive index measurement by Gaussian-Bessel beam assisted z-scan method”, Optics Express 30(5), 7291 (2022).
[13] Juan Wu, Pengbo Jia, Sandan Wang, Xuewen Wang, Jinpeng Yuan, Lirong Wang, Yi Hu, Zhigang Chen, and Jingjun Xu, “Measuring saturable nonlinearity in atomic vapor via direct spatial mapping”, Optics Express 30(24), 43012 (2022).
科研项目
国家资助博士后研究人员计划项目,2023.07 - 2025.07,24万,结题
专利
(1)基于双光梳干涉法的光梳绝对模式数测量装置及方法(ZL202210186637.9)
(2)基于光学频率梳干涉测量法进行三维成像的装置及方法(ZL202011525217.6)
(3)一种原子系综质心速度测量装置和方法(ZL202011577719.3)
(4)基于双光梳干涉测量法的光学镜片质量检测系统及方法(ZL202010150743.2)
(5)基于光学频率梳的空气折射率自校准系统和方法(ZL201910054049.8)
(6)一种精确测量超冷分子离解能的装置及方法(ZL201810547566.4)
(2)基于光学频率梳干涉测量法进行三维成像的装置及方法(ZL202011525217.6)
(3)一种原子系综质心速度测量装置和方法(ZL202011577719.3)
(4)基于双光梳干涉测量法的光学镜片质量检测系统及方法(ZL202010150743.2)
(5)基于光学频率梳的空气折射率自校准系统和方法(ZL201910054049.8)
(6)一种精确测量超冷分子离解能的装置及方法(ZL201810547566.4)
