科研项目:
- [1]. 国家重点研发计划项目“全光纤非线性单光子显微光谱仪”,负责人
- [2]. 国家重大科学仪器设备开发专项任务 “光纤力热复合测试仪光源解调及探头相关技术研究”,负责人
- [3]. 国家973课题“基于光微流体理论的生物化学光纤传感器的基础研究”,负责人
- [4]. 国家自然科学基金重点项目,“水下多参量光纤传感基础研究”, 负责人
- [5]. 国家自然科学基金面上项目,“高空间分辨率、大动态范围的光纤声波波束形成探测成像理论和方法研究”,负责人
- [6]. 国家自然科学基金面上项目,“高分辨率、宽范围的便携型光纤CARS 显微激发源研究”,负责人
- [7]. 国家自然科学青年基金项目,“基于WGM的多通道光微流体生物传感技术研究”,负责人
- [8]. 中国工程院咨询研究重大项目课题,“面向重点领域的新一代光电智能检测产业发展战略”,负责人
- [9]. 国家海洋局区域经济创新示范项目课题,“高精度海洋光纤压力传感器”,负责人
- [10]. 国家自然科学基金仪器专项项目,“飞机大气压力光纤传感阵列监测仪” ,主要参加人
- [11]. 国家自然科学基金仪器专项项目,“新型金融印鉴真伪检验仪”,主要参加人
- [12]. 教育部科学技术研究重大项目,“飞机大气压力数据嵌入式系统基础理论及应用研究” 主要参加人
- [13]. 天津市科技支撑计划重点项目,“高精度大气压力光纤传感系统”,负责人
- [14]. 航空工业成都凯天公司光纤传感项目,负责人
- [15]. 航天五院山东航天电子技术研究所光纤传感项目,负责人
授权美国与中国发明专利:
- [1]. Junfeng Jiang,Tiegen Liu,Jinling Yan,Kun Liu,Shuang Wang,Xuezhi Zhang,Chuangjun Zang,Renwei Xie,Qiliang Chu,Fiber Bragg grating demodulation device capable of supressing fluctuations at variable ambient temperature and demodulation methord thereof, US 11181400 B2
- [2]. Jiang Junfeng,Liu Tiegen ,Yin Jinde ,Liu Kun ,Liu Yu,High stable fiber fabry-perot pressure sensor with glue-free packing and its fabrication method ,US 9074957 B2
- [3]. J. Jiang,R. Hui,D. Richards,S. Oliva,Measurement of Polarization dependent loss in an optical transmission system,US 8059958 B1
- [4]. Liu Tiegen, Jiang Junfeng, Yang Huijia, Liu Kun,Wang Shuang, Zhang Weihang, Fiber Optical Fabry-Perot Flow Test Device and Test Method with Local Bending Diversion Structure,US 10508938 B2
- [5]. Tiegen Liu,Junfeng Jiang,Jinde Yin,Kun Liu,Shaohua Wang, Swing-style and high signal-to-noise ratio demodulation devices and corresponding demodulation method for the measurement of low coherence interference displacement,US 8958075 B2
- [6]. 江俊峰,刘铁根,马喆,王双,刘琨,陈文杰,张学智, 基于双偏振双边带调制的分布式光纤声传感装置及方法, ZL201810253111.1
- [7]. 江俊峰,刘铁根,马喆,王双,刘琨,陈文杰,张学智,一种数字双啁啾脉冲调制的分布式光纤声传感装置及测量方法,ZL201810012818.3
- [8]. 江俊峰,刘铁根,宋璐瑶,刘琨,王双,尹金德,何盼,多通道高精度光纤光栅传感解调装置及其解调方法,2013,ZL201310099719.0
- [9]. 江俊峰,刘铁根,闫金玲,刘琨,王双,张学智,臧传军,谢仁伟,楚奇梁,环境变温下波动抑制的光纤光栅传感解调装置与解调方法,2016,ZL201610668091.5
- [10]. 江俊峰,刘铁根,谢仁伟,张学智,王双,刘琨,臧传军,楚奇梁,樊晓军,基于低熔点玻璃的新型FBG温度传感器的封装工艺,2017, ZL 201710796664.7
- [11]. 江俊峰,刘铁根,吴凡,刘琨,王双,尹金德,邹盛亮,基于迈克尔逊干涉理论的微型光纤高温传感器及制作方法,2015,ZL201510496982.2
- [12]. 江俊峰,刘铁根,刘琨,尹金德,一种高精度大量程低相干干涉位移解调装置及其解调方法, ZL201010582673.4
- [13]. 江俊峰,刘铁根,尹金德,刘琨,王少华,孟祥娥,王双,秦尊琪,双法-珀光纤压力传感器温度自校正及其制作方法, ZL201210077635.2
- [14]. 江俊峰,刘铁根,王少华,刘琨,尹金德,孟祥娥,基于任意极值的低相干干涉解调方法, ZL201110403032.2
- [15]. 江俊峰,刘铁根,孟祥娥,刘琨,尹金德,王少华,王双,秦尊琪,吴凡,线阵CCD像元级信号增益自补偿方法及补偿电路, ZL201210093677.5
- [16]. 江俊峰,刘铁根,王少华,刘琨,王双,尹金德,孟祥娥,吴凡,秦尊琪,李定杰,基于相位斜率确定单色频率干涉级次的低相干干涉解调方法, ZL201210334925.0
- [17]. 江俊峰,刘铁根,王少华,刘琨,尹金德,孟祥娥,王双,秦尊琪,基于单色频率绝对相位的低相干干涉解调方法, ZL201210077175.3
- [18]. 江俊峰,刘铁根,王少华,刘琨,尹金德,孟祥娥,王双,秦尊琪,吴凡,基于相位斜率定位中心波峰的低相干干涉解调方法, ZL201210086405.2
- [19]. 江俊峰,刘铁根,王少华,刘琨,尹金德,王双,孟祥娥,秦尊琪,吴凡,张以谟,基于标定算法和相移技术的快速、高精度低相干干涉解调方法, ZL201210137690.6
- [20]. 江俊峰,刘铁根,尹金德,刘琨,王双,张以谟,吴凡,秦尊琪,邹盛亮,基于低相干干涉的光纤杨氏干涉光程差解调装置及方法, ZL201210529934.5
- [21]. 江俊峰,刘铁根,王双,刘琨,尹金德,吴凡,秦尊琪,邹盛亮,基于双折射色散的皮米量级位移测量装置及测量方法, ZL201310015107.9
- [22]. 江俊峰,刘铁根,王双,刘琨,尹金德,吴振海,吴凡,秦尊琪,基于色散特征和包络峰值的低相干干涉解调方法,ZL201310164536.2
- [23]. 江俊峰,刘铁根,尹金德,刘琨,王双,吴凡,秦尊琪,宋璐瑶,基于多波长低相干光源的光纤法珀传感器复用方法与装置, ZL201310047987.8
- [24]. 江俊峰,刘铁根,尹金德,刘琨,王双,邹盛亮,秦尊琪,吴凡,基于双折射晶体温度补偿的光纤压力传感器及其制作方法, ZL201310134396.4
- [25]. 江俊峰,刘铁根,尹金德,刘琨,王双,邹盛亮,秦尊琪,吴振海,一种MEMS芯片微腔内部残余压力测量系统及方法, ZL201310631974.5
- [26]. 江俊峰,刘铁根,尹金德,刘琨,邹盛亮,王双,秦尊琪,吴凡,具有多台阶的宽范围光纤真空传感器及其制作方法, ZL201310228911.5
- [27]. 江俊峰,刘铁根,刘琨,徐聪,采用光栅辅助耦合器阵列的多通道光微流体传感器, ZL201010185458.0
- [28]. 江俊峰,惠荣庆,刘铁根,基于波分复用技术的多通道光微流体传感器及传感装置, ZL200910068017.X
- [29]. 江俊峰,刘铁根,刘琨,刘文辉,成像式光微流体传感装置及方法, ZL201110411330.6
- [30]. 江俊峰,刘铁根,刘琨,于哲,姬强,陈文杰,刘文辉,张晶,张以谟,基于有源微管的谐振式光微流体传感装置和方法, ZL201210485535.3
- [31]. 江俊峰,刘铁根,刘琨,张晶,于哲,姬强,陈文杰,涂覆介质层的增强型光微流体传感装置和方法, ZL201210552623.0
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论文
- [1]. T. Wang, J. Jiang*, K. Liu, S. Wang, P. Niu, Y. Liu, T. Liu, Flexible minimally invasive coherent anti-Stokes Raman spectroscopy (CARS) measurement method with tapered optical fiber probe for single-cell application,PhotoniX,2022,3:11
- [2]. P. Niu, J. Jiang*, K. Liu, S. Wang, J. Jing, T. Xu, T. Wang, Y. Liu, T. Liu, Fiber-integrated WGM optofluidic chip enhanced by microwave photonic analyzer for cardiac biomarker detection with ultra-high resolution,Biosensors & Bioelectronics,2022,208:114238
- [3]. P. Niu, J. Jiang*, K. Liu, S. Wang, T. Wang, Y. Liu, X. Zhang, Z. Ding, T. Liu, High-sensitive and disposable myocardial infarction biomarker immunosensor with optofluidic microtubule lasing,Nanophotonics,2022,11(14):3351-3364
- [4]. X. Zhang, H. Sun, J. Jiang*, K. Liu, Z. Li, J. Jin, W. Bo, Y. Yu, T. Liu*, Optical time-series signals classification based on data augmentation for small sample,Science China-Information Sciences,2022,65(12):229303
- [5]. Z. Wang, Y. Liu, H. Wang, S. Wang, K. Liu, T. Xu*, J. Jiang*, Y. Chen, T. Liu, Ultra-sensitive DNAzyme-based optofluidic biosensor with liquid crystal-Au nanoparticle hybrid amplification for molecular detection,Sensors and Actuators B-Chemical,2022,359:131608
- [6]. Z. Wang, Y. Liu, C. Gong, Z. Yuan, L. Shen, P. Chang, K. Liu, T. Xu*, J. Jiang*, Y. Chen, T. Liu, Liquid crystal-amplified optofluidic biosensor for ultra-highly sensitive and stable protein assay,PhotoniX,2021,2:18
- [7]. X. Zhang, B. Yang, J. Jiang*, K. Liu, X. Fan, Z. Liu, M. Peng, G. Chen, T. Liu*, Side-polished SMS based RI sensor employing macro-bending perfluorinated POF,Opto-Electronic Advances, 2021,4(10):200041
- [8]. X. Wang, J. Jiang*, S. Wang*, K. Liu, T. Liu*, All-silicon dual-cavity fiber-optic pressure sensor with ultralow pressure-temperature cross-sensitivity and wide working temperature range, Photonics Research, 2021, 9(4):521-529,
- [9]. G. Liang, J. Jiang*, K. Liu, S. Wang, T. Xu, W. Chen, Z. Ma, Z. Ding, X. Zhang, Y. Zhang, T. Liu, Phase demodulation method based on a dual-identical-chirped-pulse and weak fiber Bragg gratings for quasi-distributed acoustic sensing,Photonics Research,2020,8(7):1093-1099
- [10]. Z. Ma, J. Jiang*, K. Liu, S. Wang, W. Chen, Y. Zhang, T. Xu, P. Niu, S. Wang, T. Liu, Virtual-block-array phase analysis for distributed acoustic sensors with a high signal-to-noise ratio reconstruction waveform, Optics Express, 2020, 28(17):24577-24585
- [11]. P. Niu, J. Jiang*, S. Wang, K. Liu, Z. Ma, Y. Zhang, W. Chen,T. Liu, Optical fiber laser refractometer based on an open microcavity Mach-Zehnder interferometer with an ultra-low detection limit, Optics Express, 2020, 28(21):30570-30585
- [12]. Y. Zhang, J. Jiang*, K.Liu, S. Wang, Z. Ma, W. Chen, T. Liu, Dual-Frequency CARS Excitation Source With Two Independent-Tunable Stokes Wavelengths Using PM-PCF and Vector Adjustment,Journal of Lightwave Technology,2020,38(8): 2392-2399
- [13]. Z. Ma, J. Jiang*, S. Wang*, K. Liu, Y. Zhang, W. Chen, P. Niu, S. Wang and T. Liu,High performance distributed acoustic sensor based on digital LFM pulse coherent-optical time domain reflectometer for intrapulse event, Applied Physics Express,2020,13(1): 012016
- [14]. W. Chen, J. Jiang*, S. Wang*, K. Liu, Z. Ma, G. Liang, Z. Ding, Y. Zhang, P. Niu and T. Liu, Hybrid demodulation method for distributed acoustic sensing based on coherent detection and pulse pair, Applied Physics Express, 2020,13(1): 012012
- [15]. R. Wang, S. Wang*, J. Jiang*, K. Liu, X. Wang, X. Zhang, Z. Ding, C. Wang and T. Liu, Fringe-Distortion-Correction for Polarized Low-Coherence Interferometry With Phosphor-Based LED, Journal of Lightwave Technology, 2019,37(14): 3557-3562
- [16]. X. Qi, S. Wang*, J. Jiang*, K. Liu, X. Wang, Y. Yang and T. Liu, Fiber Optic Fabry-Perot Pressure Sensor With Embedded MEMS Micro-Cavity for Ultra-High Pressure Detection, Journal of Lightwave Technology, 2019,37(11): 2719-2725
- [17]. X. Fan, J. Jiang*, X. Zhang*, K. Liu, S. Wang and T. Liu, Multimode interferometer-based torsion sensor employing perfluorinated polymer optical fiber, Optics Express, 2019,27(20): 28123-28132
- [18]. X. Wang, S. Wang*, J. Jiang*, K. Liu, P. Zhang, W. Wu and T. Liu, High-accuracy hybrid fiber-optic Fabry-Perot sensor based on MEMS for simultaneous gas refractive-index and temperature sensing, Optics Express, 2019,27(4): 4204-4215
- [19]. X. J. Fan, J. Jiang*, X. Zhang*, K. Liu, S. Wang, Y. Yang, F. Sun, J. Zhang, C. Guo, J. Shen, S. Wu and T. Liu, Self-marked HCN gas based FBG demodulation in thermal cycling process for aerospace environment, Optics Express, 2018,26(18): 22944-22953
- [20]. X. J. Fan, J. Jiang*, X. Zhang*, K. Liu, S. Wan and T. Liu,Simultaneous measurement of refractive index and temperature using a hybrid-grating sensor,Applied Physics Express,2019,12(11) :116501
- [21]. J. Jiang, Z. Zhao, S. Wang*, K. Liu, Y. Huang, C. Shan, H. Xiao and T. Liu, Optical fiber Fabry-Perot interferometer based on phase-shifting technique and birefringence crystals, Optics Express, 2018,26(17): 21606-21614
- [22]. S. Wang, J. S. Zhang, J. Jiang*, K. Liu, X. Wang, X. Zhang, Z. Wu, J. Zhou, H. Xiao and T. Liu, Position-deviation-compensation demodulation method for multi-channel polarized low-coherence interferometry, Optics Express, 2018,26(13): 17407-17417
- [23]. J. Jiang, M. Xiao,S. Wang*,K. Liu,X. Wang,T. Liu, Polarized low-coherence interferometer based on a matrix CCD and birefringence crystal with a two-dimensional angle , Optics Express, 2017,25(14): 15977~15986
- [24]. J. Jiang,T. Zhang,S. Wang *,K. Liu *,C. Li,Z. Zhao,T. Liu, Noncontact Ultrasonic Detection in Low-Pressure,Carbon Dioxide Medium Using High Sensitivity Fiber-Optic Fabry-Perot Sensor System , Journal of Lightwave Technology, 2017, 35(23): 5079~5085
- [25]. S. Wang, J. Jiang*, T. Liu, K. Liu, J. Yin, J. Shi, S. Zou, M. Zhang, Birefringence-Dispersion-Induced Frequency Domain Nonlinearity Compensation for Polarized Low-Coherence Interferometry Demodulation, Journal of Lightwave Technology, 2015, 33(23): 4842-4848
- [26]. T. Liu, J. Yin, J. Jiang*, K. Liu, S. Wang and S. Zou, Differential-pressure-based fiber-optic temperature sensor using Fabry-Perot interferometry, Optics Letters, 2015, 40(6) :1049-1052
- [27]. S. Wang, T. Liu, J. Jiang*, K. Liu, J. Yin, Z. Qin and S. Zou, Zero-fringe demodulation method based on location-dependent birefringence dispersion in polarized low-coherence interferometry, Optics Letters, 2014, 39(7) : 1827-1830
- [28]. J. Yin, T. Liu, J. Jiang*, K. Liu, S. Wang, F. Wu and Z. Ding, Wavelength-division-multiplexing method of polarized low-coherence interferometry for fiber Fabry-Perot interferometric sensors, Optics Letters,2013, 38(19):3751-3753
- [29]. S. Wang, T. Liu, J. Jiang*, K. Liu, J. Yin and F. Wu, Birefringence dispersion compensation demodulation algorithm for polarized low-coherence interferometry, Optics Letters,2013, 38(16): 3169-3172
- [30]. J. Jiang*, S. Wang, T. Liu, K. Liu, J. Yin, X. Meng, Y. Zhang, S. Wang, Z. Qin, F. Wu and D. Li,A polarized low-coherence interferometry demodulation algorithm by recovering the absolute phase of a selected monochromatic frequency, Optics Express, 2012,20(16):18117-18126
- [31]. S. Wang, J. Jiang*, T. Liu, K. Liu, J. Yin, X. Meng and L. Li, A Simple and Effective Demodulation Method for Polarized Low-Coherence Interferometry, IEEE Photonics Technology Letters, 2012,24(16):1390-1392
专著:
- [1]. 2021年,《Opticl Fiber Sensing Technology. Principles, Techniques and Applicatons》,Wiley-VCH出版社
- [2]. 2018年,《光纤传感网》,科学出版社,获国家科学技术学术著作出版基金资助。
- [3]. 2017年,《光电检测技术与系统(第2版)》,天津大学出版社,获2019年度天津市工程专业学位优秀教材二等奖。
- [4]. 2012年,《分立式光纤传感技术与系统》,电子工业出版社,获国家科学技术学术著作出版基金资助。
- [5]. 2008年,《光学防伪检测技术》, 电子工业出版社,获国家科学技术学术著作出版基金资助。
- [6]. 2009年,《光电检测技术与系统》, 机械工业出版社,普通高等教育规划教材。
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