谈宜东教授

光电工程研究所

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2026

1. J. S. Liu, Y. F. Wang, Y. Li, X. Xu, Y. D. Tan. Dynamic-gain-matching based large bandwidth self-mixing laser Doppler velocimetry with notable 104 intensity response enhancement. Photonics Research, 2026, 14(2).

2. Y. F. Wang, J. S. Liu, C. X. Lin, X. Xu, Y. Wang, X. H. Yang, B. B. Xie, J. B. Han, T. F. Wu, X. L. Lin, L. C. Cao, H. B. Sun, Y. D. Tan. Phase-Multiplied Interferometry via Cavity Dynamics for Resolution- Enhanced Coherent Ranging. Light: Science & Applications, 2026, 15(1).

3.王一帆, 闫姝婕, 杨昕航, 谈宜东. 调频连续波激光测距与雷达技术新进展(特邀)[J]. 激光与光电子学进展, 2026, 63(5): 0512001.(封面文章)


2025
  1. J. S. Liu, Y. F. Wang, Y. Wang, Z. M. Li, Y. D. Tan. Laser Feedback OFDR with High Sensitivity. IEEE Journal of Lightwave Technology, 2025, 43(11).

  2. S. W. Deng, X. D. Chang, J. Wang, K. R. Jiao, K. W. Li, X. Xu, Y. F. Wang, H. Shen, Y. D. Tan. Highly sensitive self-calibrating birefringence measurement based on anisotropic laser feedback polarization effect. PhotoniX, 2025, 6.

  3. A. Amani, Y. D. Tan. Low-frequency vibration monitoring system measuring the fringe shift by using linear Fresnel zone plates for shiny surfaces. Applied Optics, 2025, 64(1).

  4. C. X. Lin, Y. F. Wang, X. Xu, Y. Wang, Z. Y. Hua, H. B. Sun, L. C. Cao, Y. D. Tan. Hybrid frequency modulation LiDAR: multi-functional measurement of absolute distance, velocity, vibration and imaging. Journal of Lightwave Technology, 2025, 43(14): 6662-6670.

  5. 徐欣, 林湫童, 穆衡霖, 李子墨, 李岩, 谈宜东. 激光外差干涉皮米级平动测量技术研究[J]. 中国光学(中英文), 2025, 18(3): 535-546. 

2024

1.Z. Y. Hua, Y. Wang,Y. D. Tan. Detection of Rotational Doppler Frequency and Measurement With Broadened Spectrum. Ieee Transactions on Instrumentation and Measurement, 2024, 73.

2.Z. Y. Hua, Y. F. Wang, Q. Wang, S. Y. Fu,Y. D. Tan. Rotational Doppler effect of vortex beam with frequency-shifted laser feedback. Optics and Lasers in Engineering, 2024, 178.

3.C. Li, Z. Y. Hua, Q. Wang, L. Li, Z. C. Zhang, L. Hai, Y. D. Tan, C. Q. Gao,S. Y. Fu. Single-frequency orbital angular momentum switchable modes from a microchip laser. Optics Letters, 2024, 49(11).

4.M. F. Li, M. W. Tian, C. X. Lin, S. H. Chen, Z. P. Feng,Y. D. Tan. Microcavity Raman Laser-Based FMCW LiDAR with Enhanced Echo Sensitivity. Acs Photonics, 2024, 11(2).

5.C. X. Lin, Y. D. Tan,Q. X. Wang. Machine learning-based prediction approach for ranging resolution enhancement of FMCW LiDAR system with LSTM networks. Optics and Laser Technology, 2024, 179.

6.C. X. Lin, Y. F. Wang, Z. M. Li,Y. D. Tan. All-fiber fast coherent LiDAR for ranging and velocimetry based on optical comb injection. Applied Physics Letters, 2024, 125(24).

7.J. S. Liu, X. Xu,Y. D. Tan. Tilt-to-length coupling noise suppression based on transformation of q parameters of Gaussian beams in spaceborne gravitational wave detection. Classical and Quantum Gravity, 2024, 41(6).

8.N. Sahoo, B. Sun, Y. D. Tan, K. M. Zhou,L. Zhang. A Novel Biosensor for the Detection of Glucose Concentration Using the Dual-Peak Long Period Grating in the Near- to Mid-Infrared. Sensors, 2024, 24(4).

9.Y. D. Tan,C. X. Lin. Nonlinearity Correction Technology for Light Source of FrequencyModulated Continuous-Wave Light Detection and Ranging (Invited). Laser & Optoelectronics Progress, 2024, 61(3).

10.M. W. Tian, X. Xu, S. H. Chen, Z. P. Feng,Y. D. Tan. Ultrasensitive detection of remote acoustic vibrations at 300 m distance by optical feedback enhancement. Photonics Research, 2024, 12(9).

11.X. Xu, H. S. Liu,Y. D. Tan. Verification of Laser Heterodyne Interferometric Bench for Chinese Spaceborne Gravitational Wave Detection Missions. Research, 2024, 7.

12.X. Xu, J. S. Liu, H. L. Mu, Y. Li,Y. D. Tan. Six-Degrees-of-Freedom Test Mass Readout via Optical Phase-Locking Heterodyne Interferometry. IEEE Transactions on Instrumentation and Measurement, 2024, 73.

13.B. R. Zhou, Y. Wang, B. Zhou, X. J. Shen,Y. D. Tan. Highly sensitive interferometry with strong anti laser jamming capability based on frequency shift optical feedback. Optics and Laser Technology, 2024, 171.

14.C. X. Lin, Y. F. Wang, Y. D. Tan. High precision and sensitivity anti-interference 3D coherent ranging based on dual reversely chirped self-mixing lasers. Advanced Photonics Nexus, 2024, 3(6): 1-14.



2023

1.A. Amani,Y. D. Tan. Method for a deflection-type refractometer measuring the fringe shift by using linear Fresnel zone plates. Applied Optics, 2023, 62(33).

2.Z. R. Dai, J. S. Tan, K. M. Zhou, L. Zhang, X. H. Zhou,Y. D. Tan. Optical fiber SPR biosensor with frequency multiplexing compensated laser heterodyne feedback for ultrasensitive detection of fluoroquinolones. Sensors and Actuators B-Chemical, 2023, 393.

3.M. F. Li, Z. R. Dai, M. W. Tian,Y. D. Tan. Intracavity dynamics-based gain-assisted sensing with microtubule Raman microlaser. Apl Photonics, 2023, 8(8).

4.M. F. Li, Y. F. Wang, Z. R. Dai,Y. D. Tan. Dynamic Evolution of Microcavity Raman Laser Subjected to Frequency-Shifted Feedback and its Application in Laser Spectrum Encoding Thermal Sensing. Ieee Journal of Selected Topics in Quantum Electronics, 2023, 29(1).

5.C. X. Lin, Y. F. Wang,Y. D. Tan. Laser Feedback FMCW Ranging System Based on Multiple-Equal-Phase-Subdivision Resampling. Journal of Lightwave Technology, 2023, 41(9).

6.J. S. Tan, Z. R. Dai, K. M. Zhou, L. Zhang, M. He, Y. D. Tan,X. H. Zhou. An Ultrasensitive and Universal Surface Plasmonic Biosensor for Detection of Micropollutants in Aquatic Environments. Environmental Science & Technology, 2023, 57(22).

7.J. S. Tan, Z. R. Dai, K. M. Zhou, L. Zhang, X. H. Zhou,Y. D. Tan. Ultrasensitive Screening of Endocrine-Disrupting Chemicals Using a Surface Plasmon Resonance Biosensor with Polarization-Compensated Laser Heterodyne Feedback. Analytical Chemistry, 2023, 95(22).

8.M. W. Tian, M. F. Li,Y. D. Tan. A Polarization-Modulated Laser Frequency-Shifted Feedback System Reducing the Parasitic Noise Intensity by About Three Orders of Magnitude. Journal of Lightwave Technology, 2023, 41(18).

9.M. W. Tian,Y. D. Tan. Intracavity-dynamics-based optical phase amplifier with over tenfold amplification. Photonics Research, 2023, 11(11).

10.Y. F. Wang, Z. Y. Hua, J. C. Shi, Z. R. Dai, J. G. Wang, L. Y. Shao,Y. D. Tan. Laser Feedback Frequency-Modulated Continuous-Wave LiDAR and 3-D Imaging. Ieee Transactions on Instrumentation and Measurement, 2023, 72.

11.X. Xu, Z. R. Dai,Y. D. Tan. A Dual-Beam Differential Method Based on Feedback Interferometry for Noncontact Measurement of Linear and Angular Displacement. Ieee Transactions on Industrial Electronics, 2023, 70(6).

12.B. R. Zhou, B. Zhou, X. J. Shen,Y. D. Tan. Transverse dynamical response of laser frequency-shifted feedback with mode mismatch. Optics and Lasers in Engineering, 2023, 169.


2022

1.Z. R. Dai, X. Xu, Y. F. Wang, M. F. Li, K. M. Zhou, L. Zhang,Y. D. Tan. Surface plasmon resonance biosensor with laser heterodyne feedback for highly-sensitive and rapid detection of COVID-19 spike antigen. Biosensors & Bioelectronics, 2022, 206.

2.Z. Y. Hua, K. Y. Zhu, Y. F. Wang, Z. L. Zeng,Y. D. Tan. Contrast-enhanced ultrasound-modulated laser feedback imaging with microbubbles. Optics and Lasers in Engineering, 2022, 157.

3.M. F. Li, Y. F. Wang, X. Xu,Y. D. Tan. Noise suppression of relaxation oscillation intensity in a microcavity Raman laser. Optics and Laser Technology, 2022, 148.

4.J. C. Shi, Q. Liu, Y. D. Tan, K. H. Cui,J. W. Lu. Fast and in-situ correction of camera channel crosstalk based on Fourier transform of carrier fringes in multi-colour interferometry. Optics and Lasers in Engineering, 2022, 151.

5.M. W. Tian, M. F. Li, X. Xu, Z. Y. Hua,Y. D. Tan. A Coherent Detection Method With 10^6 Higher Intensity Response Sensitivity Than Normal Heterodyne Interferometry. Journal of Lightwave Technology, 2022, 40(14).

6.Y. F. Wang, X. Xu, Z. R. Dai, Z. Y. Hua, C. X. Lin, Y. B. Hou, Q. Zhang, P. Wang,Y. D. Tan. Frequency-swept feedback interferometry for noncooperative-target ranging with a stand-off distance of several hundred meters. Photonix, 2022, 3(1).

7.X. Xu, Z. R. Dai, Y. F. Wang, M. F. Li,Y. D. Tan. High Sensitivity and Full-Circle Optical Rotary Sensor for Non-Cooperatively Tracing Wrist Tremor With Nanoradian Resolution. Ieee Transactions on Industrial Electronics, 2022, 69(9).


2016

1.Shaohui Zhang; Shulian Zhang*; Liqun Sun; Yidong Tan; Fiber self-mixing interferometer with orthogonally polarized light compensation , Optics Express, 2016, 24(23): 26558-26564.

2.Shaohui Zhang, Shulian Zhang, Yidong Tan, and Liqun Sun. Common-path heterodyne self-mixing interferometry with polarization and frequency multiplexing. Optics letters, 2016, 41(20): 4827-4830.

3.Hao Chen, Yidong Tan, Shulian Zhang, and Liqun Sun. Study on mechanism of amplitude fluctuation of dual-frequency beat in microchip Nd: YAG laser. Journal of Optics, 2016, 19(1): 015702.

4.Yidong Tan, Kaiyi Zhu, Shulian Zhang. New Method for Lens Thickness Measurement by the Frequency-shifted Confocal Feedback. Optics Communications, 2016, 380: 91–94

5.Shaohui Zhang, Shulian Zhang, Yidong Tan and Liqun Sun. A microchip laser source with stable intensity and frequency used for self-mixing interferometry. Review of Scientific Instruments, 2016, 87: 053114

6.Shaohui Zhang, Shulian Zhang, Liqun Sun and Yidong Tan. Spectrum broadening in optical frequency-shifted feedback NdYVO4 microchip laser. IEEE Photonics Technology Letters, 2016, 28:1593-1596

7.郭波; 秦水介; 谈宜东; 基于Nd:YVO4激光回馈效应的远距离振动测量研究, 光电子-激光, 2016, (03): 298-302.

8.Shaohui Zhang, Shulian Zhang, Liqun Sun and Yidong Tan. Spectrum broadening in optical frequency-shifted feedback NdYVO4 microchip laser. IEEE Photonics Technology Letters, 2016, 28:1593-1596

9.Shaohui Zhang, Shulian Zhang, Yidong Tan and Liqun Sun. A microchip laser source with stable intensity and frequency used for self-mixing interferometry. Review of Scientific Instruments, 2016, 87: 053114

10.Yidong Tan, Kaiyi Zhu, Shulian Zhang, New Method for Lens Thickness Measurement by the Frequency-shifted Confocal Feedback. Optics Communications, 2016, 380: 91–94

11.Yidong Tan, Kaiyi Zhu, Shulian Zhang, Lens Thickness Measurement and Axial Positioning Method Based on the Frequency-shifted Confocal Feedback[C]// Lasers & Electro-optics. IEEE, 2016.

12.Shaohui Zhang; Shulian Zhang*; Yidong Tan; Liqun Sun; Self-mixing interferometry with mutual independent orthogonal polarized light, Optics Letters, 2016, 41(4): 844-846

13.Hao Chen; Shulian Zhang*; Yidong Tan. Effect of pump polarization direction on power characteristics in monolithic microchip Nd:YAG dual-frequency laser, Applied Optics, 2016, 55(11): 2858-2862.

14.Shaohui Zhang; Shulian Zhang*; Yidong Tan; Liqun Sun; Common-path heterodyne self-mixing interferometry with polarization and frequency multiplexing, Optics Letters, 2016, 41(20): 4827-4830.

15.Ling Xu; Song Zhang; Yidong Tan; Shulian Zhang; Liqun Sun *; Refra ctive Index Measurement of Liquids by Double-Beam Laser Frequency-Shift Feedback, IEEE Photonics Technology Letters, 2016, 28(10): 1049-1052.

16.Shaohui Zhang; Shulian Zhang*; Yidong Tan; Liqun Sun; Common-path heterodyne self-mixing interferometry with polarization and frequency multiplexing, Optics Letters, 2016, 41(20): 4827-4830


2015

1.Shaohui Zhang, Yidong Tan, and Shulian Zhang. Effect of gain and loss anisotropy on polarization dynamics in Nd: YAG microchip lasers. Journal of Optics, 2015, 17(4): 045703.

2.Zeng, Zhaoli; Qu, Xueming; Tan, Yidong; Tan Runtao, Zhang Shulian. High-accuracy self-mixing interferometer based on single high-order orthogonally polarized feedback effects. Optics Express, 2015, 23(13): 16977-16983.

3.Li, Jiang; Tan, Yidong; Zhang, Shulian. Generation of phase difference between self-mixing signals in a-cut Nd:YVO4 laser with a waveplate in the external cavity. Optics Letters, 2015, 40(15): 3615-3618

4.Jiang Li, Yidong Tan, Shulian Zhang, Generation of phase difference between self-mixing signals in a-cut Nd:YVO4 laser with a waveplate in the external cavity. Optics Letters, 2015, 40(15): 3615-3618

5.Zeng, Zhaoli; Qu, Xueming; Tan, Yidong; Tan Runtao, Zhang Shulian. High-accuracy self-mixing interferometer based on single high-order orthogonally polarized feedback effects. Optics Express, 2015, 23(13): 16977-16983.

6.Ding Yingchun; Zheng Fasong; Lin Jing; Tan Yidong. Measurement of thermal expansion coefficients of materials based on Nd:YVO4 laser feedback systems, Proc. SPIE 9524, International Conference on Optical and Photonic Engineering (ICOPEN 2015), 9524(6):241-245.

7.Jiang Li, Kaiyi Zhu, Yidong Tan, Influence of longitudinal modes on self-mixing signals in Nd:YVO4 feedback interferometers[C]// 2015 International Conference on Optoelectronics and Microelectronics (ICOM). IEEE, 2015.

8.Zhang Shao Hui; Zhang Shu Lian*; Tan Yi Dong; Sun Li Qun; Dynamical properties of total intensity fluctuation spectrum in two-mode Nd:YVO4 microchip laser , Chinese Physics B, 2015, 24(12): 0-124203.

9.Zhang Peng; Liu Ning; Zhao Shijie; Tan Yidong; Zhang Shulian*; Measurement method for optical retardation based on the phase difference effect of laser feedback fringes , Applied Optics, 2015, 54(2): 204-209.

10.Zheng Fasong; Tan Yidong; Lin Jing; Ding Yingchun; Zhang Shulian*; Study of non-contact measurement of the thermal expansion coefficients of materials based on laser feedback interferometry, Review of Scientific Instruments, 2015, 86(4): 0-043109.

11.Zheng Fa Song; Ding Ying Chun*; Tan Yi Dong; Lin Jing; Zhang Shu Lian; The Approach of Compensation of Air Refractive Index in Thermal Expansion Coefficients Measurement Based on Laser Feedback Interferometry, Chinese Physics Letters, 2015, 32(7): 0-070702.

12.Zeng Zhaoli ; Qu Xueming; Tan Yidong ; Tan Runtao; Zhang Shulian*; High-accuracy self-mixing interferometer based on single high-order orthogonally polarized feedback effects, Optics Express, 2015, 23(13): 16977-16983

13.Xu Ling; Tan Yi Dong; Zhang Shu Lian*; Sun Li Qun; Measurement of Refractive Index Ranging from 1.42847 to 2.48272 at 1064 nm Using a Quasi-Common-Path Laser Feedback System, Chinese Physics Letters, 2015, 32(9): 0-090701.

14.Zhang Shaohui; Tan Yidong; Zhang Shulian; Effect of gain and loss anisotropy on polarization dynamics in Nd:YAG microchip lasers, Journal of Optics, 2015, 17(4): 0-045703


2014
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2013
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2012
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2010
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