王俊  男  博导  中国科学院上海光学精密机械研究所
电子邮件: jwang@siom.ac.cn
通信地址: 上海市嘉定区清河路390号
邮政编码: 201800

招生信息

   
招生专业
070207-光学
080501-材料物理与化学
080502-材料学
招生方向
纳米材料光子学
非线性光学
激光技术

工作经历

   
工作简历
2010-12~现在, 中国科学院上海光学精密机械研究所, 研究员
2006-12~2010-12,都柏林大学圣三一学院, 资深博士后研究员
2005-01~2005-07,法国昂热大学, 访问学者

专利与奖励

   
专利成果
[1] 王俊, 张天举. 具有温场调控功能的非共轴透射式超快瞬态吸收系统和测量方法. CN: CN112229804B, 2021-07-06.

[2] 张晓艳, 张龙, 王俊. 水热制备大尺寸、正交非对称结构层状二硫化钼纳米薄膜的方法. 中国: CN104961353B, 2018.01.12.

[3] 王俊, 李源鑫, 董宁宁, 张赛锋. 二维共焦显微非线性强度扫描系统和测量方法. 中国: CN105067528B, 2017-12-01.

[4] 沈曹然, 王俊, 张赛锋, 张晓艳, 董宁宁. 石墨烯光子晶体复合薄膜的制备方法. 中国: CN104003627A, 2014-08-27.

[5] 王康鹏, 王俊, 张龙, 程鑫. 双层级联光限幅器. 中国: CN103605247A, 2014-02-26.

[6] 王俊, 王高中, 张赛锋, 张晓燕, 董宁宁, 张龙. 圆筒式成膜装置. 中国: CN103230858A, 2013-08-07.

[7] 程鑫, 王俊, 王康鹏, 董宁宁, 张晓艳, 张龙. 气压控制的光限幅器. 中国: CN103197483A, 2013-07-10.

出版信息

   
发表论文
[1] Li, Hui, Hou, Ruipeng, Sun, Yanhui, Diao, Mengjuan, Liang, Ying, Chen, Xin, Huang, Zhipeng, Wang, Jun, Humphrey, Mark G, Yu, Zhiyang, Zhang, Chi. Switching the Nonparametric Optical Nonlinearity of Tungsten Oxide by Electrical Modulation. ADVANCED OPTICAL MATERIALS[J]. 2021, 9(12): http://dx.doi.org/10.1002/adom.202002188.
[2] Hou, Ruipeng, Li, Hui, Sun, Yanhui, Diao, Mengjuan, Liang, Ying, Huang, Zhipeng, Wang, Jun, Humphrey, Mark G, Zhang, Chi. Electrical Tuning of the Fifth-Order Optical Nonlinearity of Antimony-Doped Tin Oxide. ADVANCED OPTICAL MATERIALS[J]. 2021, 9(2): https://www.webofscience.com/wos/woscc/full-record/WOS:000590617300001.
[3] Zhao, Yuye, Dong, Ningning, Qiu, Pengpeng, Jiang, Wan, Wang, Jun, Wang, Lianjun, Gu, Shijia, Zhou, Beiying, Luo, Wei. The nonlinear optical properties of silver nanoparticles decorated glass obtained from sintering mesoporous powders. JOURNAL OF THE AMERICAN CERAMIC SOCIETY[J]. 2021, 104(6): 2571-2578, https://www.webofscience.com/wos/woscc/full-record/WOS:000621645100001.
[4] 董宁宁, 刘强虎, 王俊. 二维非线性光限幅材料研究进展. 中国激光. 2021, 48(13): 1-15, [5] Wang, Hongqiang, Mao, Yu, Kislyakov, Ivan M, Dong, Ningning, Chen, Chenduan, Wang, Jun. Anisotropic Raman scattering and intense broadband second-harmonic generation in tellurium nanosheets. OPTICS LETTERS[J]. 2021, 46(8): 1812-1815, http://dx.doi.org/10.1364/OL.419976.
[6] Pang, Chi, Li, Rang, Li, Ziqi, Dong, Ningning, Wang, Jun, Ren, Feng, Chen, Feng. Multi-gigahertz laser generation based on monolithic ridge waveguide and embedded copper nanoparticles. CHINESE OPTICS LETTERS[J]. 2021, 19(2): 25-29, http://lib.cqvip.com/Qikan/Article/Detail?id=7104526383.
[7] Yang, Zixin, Han, Lili, Yang, Qi, Ren, Xianghe, Din, Syed Zaheer Ud, Zhang, Xiaoyan, Leng, Jiancai, Zhang, Jiabao, Zhang, Baitao, Yang, Kejian, He, Jingliang, Li, Chunlong, Wang, Jun. Two-dimensional tellurium saturable absorber for ultrafast solid-state laser. CHINESE OPTICS LETTERS[J]. 2021, 19(3): http://dx.doi.org/10.3788/COL202119.031401.
[8] Han, Lili, Yang, Zixin, Yang, Qi, Ren, Xianghe, Zhang, Xiaoyan, Zhang, Baitao, Yang, Kejian, He, Jingliang, Li, Chunlong, Wang, Jun. Visible nonlinear optical properties of tellurium and application as saturable absorber. OPTICS AND LASER TECHNOLOGY[J]. 2021, 137: http://dx.doi.org/10.1016/j.optlastec.2020.106817.
[9] Li, Hui, Hou, Ruipeng, Sun, Yanhui, Diao, Mengjuan, Liang, Ying, Chen, Xin, Huang, Zhipeng, Wang, Jun, Humphrey, Mark G, Yu, Zhiyang, Zhang, Chi. Switching the Nonparametric Optical Nonlinearity of Tungsten Oxide by Electrical Modulation. ADVANCED OPTICAL MATERIALS[J]. 2021, 9(12): http://dx.doi.org/10.1002/adom.202002188.
[10] Hou, Ruipeng, Li, Hui, Sun, Yanhui, Diao, Mengjuan, Liang, Ying, Huang, Zhipeng, Wang, Jun, Humphrey, Mark G, Zhang, Chi. Electrical Tuning of the Fifth-Order Optical Nonlinearity of Antimony-Doped Tin Oxide. ADVANCED OPTICAL MATERIALS[J]. 2021, 9(2): https://www.webofscience.com/wos/woscc/full-record/WOS:000590617300001.
[11] Zhao, Yuye, Dong, Ningning, Qiu, Pengpeng, Jiang, Wan, Wang, Jun, Wang, Lianjun, Gu, Shijia, Zhou, Beiying, Luo, Wei. The nonlinear optical properties of silver nanoparticles decorated glass obtained from sintering mesoporous powders. JOURNAL OF THE AMERICAN CERAMIC SOCIETY[J]. 2021, 104(6): 2571-2578, https://www.webofscience.com/wos/woscc/full-record/WOS:000621645100001.
[12] 董宁宁, 刘强虎, 王俊. 二维非线性光限幅材料研究进展. 中国激光. 2021, 48(13): 1-15, [13] Wang, Hongqiang, Mao, Yu, Kislyakov, Ivan M, Dong, Ningning, Chen, Chenduan, Wang, Jun. Anisotropic Raman scattering and intense broadband second-harmonic generation in tellurium nanosheets. OPTICS LETTERS[J]. 2021, 46(8): 1812-1815, http://dx.doi.org/10.1364/OL.419976.
[14] Pang, Chi, Li, Rang, Li, Ziqi, Dong, Ningning, Wang, Jun, Ren, Feng, Chen, Feng. Multi-gigahertz laser generation based on monolithic ridge waveguide and embedded copper nanoparticles. CHINESE OPTICS LETTERS[J]. 2021, 19(2): 25-29, http://lib.cqvip.com/Qikan/Article/Detail?id=7104526383.
[15] Yang, Zixin, Han, Lili, Yang, Qi, Ren, Xianghe, Din, Syed Zaheer Ud, Zhang, Xiaoyan, Leng, Jiancai, Zhang, Jiabao, Zhang, Baitao, Yang, Kejian, He, Jingliang, Li, Chunlong, Wang, Jun. Two-dimensional tellurium saturable absorber for ultrafast solid-state laser. CHINESE OPTICS LETTERS[J]. 2021, 19(3): http://dx.doi.org/10.3788/COL202119.031401.
[16] Han, Lili, Yang, Zixin, Yang, Qi, Ren, Xianghe, Zhang, Xiaoyan, Zhang, Baitao, Yang, Kejian, He, Jingliang, Li, Chunlong, Wang, Jun. Visible nonlinear optical properties of tellurium and application as saturable absorber. OPTICS AND LASER TECHNOLOGY[J]. 2021, 137: http://dx.doi.org/10.1016/j.optlastec.2020.106817.
[17] Zhang, Xiaoyan, Wang, Hongqiang, Wu, Kan, Li, Qiaodan, Shao, Zhengpeng, Yang, Qi, Chen, Chenduan, Cui, Xiaoli, Chen, Jianping, Wang, Jun. Two-dimensional gamma-graphyne for ultrafast nonlinear optical applications. OPTICAL MATERIALS EXPRESS[J]. 2020, 10(2): 293-301, https://www.webofscience.com/wos/woscc/full-record/WOS:000511124100005.
[18] Wang Jun. Tellurium as the saturable absorber for the passively Q-switched laser at 1.34 μm Qi. Applied Optics. 2020, [19] Wang, Gaozhong, Bennett, Daniel, John Zhang, Chuanfang, Coileain, Cormac O, Liang, Meiying, McEvoy, Niall, Wang, Jing Jing, Wang, Jun, Wang, Kangpeng, Nicolosi, Valeria, Blau, Werner J. Two-Photon Absorption in Monolayer MXenes. ADVANCED OPTICAL MATERIALS[J]. 2020, 8(9): https://www.webofscience.com/wos/woscc/full-record/WOS:000531416200017.
[20] 张晗, 王俊, 张梦. 低维材料非线性光学与器件专题编者按. 物理学报. 2020, 69(18): 29-, http://lib.cqvip.com/Qikan/Article/Detail?id=7102937927.
[21] Pang, Chi, Li, Rang, Dong, Ningning, Li, Ziqi, Wang, Jun, Ren, Feng, Chen, Feng. Plasmonic core-shell nano-heterostructures with temperature-dependent optical nonlinearity. NANOSCALE[J]. 2020, 12(45): 22995-23002, http://dx.doi.org/10.1039/d0nr05176d.
[22] 王俊, 杨晓飞. 光子芯片研究进展及展望. 世界科学. 2020, 29-31, http://lib.cqvip.com/Qikan/Article/Detail?id=7103619577.
[23] Li, Rang, Pang, Chi, Li, Ziqi, Yang, Ming, Amekura, Hiroshi, Dong, Ningning, Wang, Jun, Ren, Feng, Wu, Qiang, Chen, Feng. Fused Silica with Embedded 2D-Like Ag Nanoparticle Monolayer: Tunable Saturable Absorbers by Interparticle Spacing Manipulation. LASER & PHOTONICS REVIEWS[J]. 2020, 14(2): https://www.webofscience.com/wos/woscc/full-record/WOS:000506698500001.
[24] Wang, Lei, Zhang, Saifeng, Huang, Jiawei, Mao, Yu, Dong, Ningning, Zhang, Xiaoyan, Kislyakov, Ivan M, Wang, Hongqiang, Wang, Zixin, Chen, Chenduan, Zhang, Long, Wang, Jun. Auger-type process in ultrathin ReS2. OPTICAL MATERIALS EXPRESS[J]. 2020, 10(4): 1092-1104, https://www.webofscience.com/wos/woscc/full-record/WOS:000523221500025.
[25] Lou, Zhiyuan, Zheng, Yinghui, Liu, Candong, Zhang, Luyao, Ge, Xiaochun, Li, Yanyan, Wang, Jun, Zeng, Zhinan, Li, Ruxin, Xu, Zhizhan. Ellipticity dependence of nonperturbative harmonic generation in few-layer MoS2. OPTICS COMMUNICATIONS[J]. 2020, 469: http://dx.doi.org/10.1016/j.optcom.2020.125769.
[26] Diao, Mengjuan, Li, Hui, Hou, Ruipeng, Liang, Ying, Wang, Jun, Luo, Zhishan, Huang, Zhipeng, Zhang, Chi. Vertical Heterostructure of SnS-MoS2 Synthesized by Sulfur-Preloaded Chemical Vapor Deposition. ACS APPLIED MATERIALS & INTERFACES[J]. 2020, 12(6): 7423-7431, https://www.webofscience.com/wos/woscc/full-record/WOS:000514256400064.
[27] Dong, Xuejian, Li, Ziqi, Pang, Chi, Dong, Ningning, Jiang, Hailing, Wang, Jun, Chen, Feng. Q-switched mode-locked Nd:GGG waveguide laser with tin disulfide as saturable absorber. OPTICAL MATERIALS[J]. 2020, 100: http://dx.doi.org/10.1016/j.optmat.2020.109702.
[28] Yang, Qi, Zhang, Xiaoyan, Yang, Zixin, Ren, Xianghe, Nie, Hunkun, Yan, Bingzheng, Yang, Kejian, Zhang, Baitao, He, Jingliang, Wang, Jun. Tellurium as the saturable absorber for the passively Q-switched laser at 1.34 mu m. APPLIED OPTICS[J]. 2020, 59(9): 2892-2896, https://www.webofscience.com/wos/woscc/full-record/WOS:000526529300028.
[29] Liu, Zhiwei, Zhang, Bin, Dong, Ningning, Wang, Jun, Chen, Yu. Perfluorinated gallium phthalocyanine axially grafted black phosphorus nanosheets for optical limiting. JOURNAL OF MATERIALS CHEMISTRY C[J]. 2020, 8(30): 10197-10203, https://www.webofscience.com/wos/woscc/full-record/WOS:000556197600006.
[30] Ding, Jiale, Cui, Zengduo, Dong, Ningning, Li, Bolong, Zhang, Yunhe, Wang, Jun, Jiang, Zhenhua. Enhanced optical limiting properties of composite films consisting of hyperbranched phthalocyanine and polyphenylsulfone with high linear transmittance. SYNTHETIC METALS[J]. 2020, 265: http://dx.doi.org/10.1016/j.synthmet.2020.116405.
[31] Chen, Shoulong, Zhang, Tianju, Liu, Xiaolin, Qiao, Jinli, Peng, Lin, Wang, Jun, Liu, Yongsheng, Yang, Tieying, Lin, Jia. Lattice reconstruction of La-incorporated CsPbI2Br with suppressed phase transition for air-processed all-inorganic perovskite solar cells. JOURNAL OF MATERIALS CHEMISTRY C[J]. 2020, 8(10): 3351-3358, https://www.webofscience.com/wos/woscc/full-record/WOS:000520979400002.
[32] Gan, Fan, Dong, Ningning, Liu, Zhiwei, Jia, Huimei, Wang, Jun, Chen, Yu. Organic Small Molecule Covalently Functionalized Molybdenum Disulfide Hybrid Material for Optical Limiting. BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN[J]. 2020, 93(1): 26-31, https://www.webofscience.com/wos/woscc/full-record/WOS:000504760600004.
[33] Mao, Yu, Dong, Ningning, Wang, Lei, Chen, Xin, Wang, Hongqiang, Wang, Zixin, Kislyakov, Ivan M, Wang, Jun. Machine Learning Analysis of Raman Spectra of MoS2. NANOMATERIALS[J]. 2020, 10(11): https://www.webofscience.com/wos/woscc/full-record/WOS:000594359500001.
[34] Zhang, Xiaoyan, Wang, Hongqiang, Wu, Kan, Li, Qiaodan, Shao, Zhengpeng, Yang, Qi, Chen, Chenduan, Cui, Xiaoli, Chen, Jianping, Wang, Jun. Two-dimensional gamma-graphyne for ultrafast nonlinear optical applications. OPTICAL MATERIALS EXPRESS[J]. 2020, 10(2): 293-301, https://www.webofscience.com/wos/woscc/full-record/WOS:000511124100005.
[35] Wang Jun. Tellurium as the saturable absorber for the passively Q-switched laser at 1.34 μm Qi. Applied Optics. 2020, [36] Wang, Gaozhong, Bennett, Daniel, John Zhang, Chuanfang, Coileain, Cormac O, Liang, Meiying, McEvoy, Niall, Wang, Jing Jing, Wang, Jun, Wang, Kangpeng, Nicolosi, Valeria, Blau, Werner J. Two-Photon Absorption in Monolayer MXenes. ADVANCED OPTICAL MATERIALS[J]. 2020, 8(9): https://www.webofscience.com/wos/woscc/full-record/WOS:000531416200017.
[37] 张晗, 王俊, 张梦. 低维材料非线性光学与器件专题编者按. 物理学报. 2020, 69(18): 29-, http://lib.cqvip.com/Qikan/Article/Detail?id=7102937927.
[38] Pang, Chi, Li, Rang, Dong, Ningning, Li, Ziqi, Wang, Jun, Ren, Feng, Chen, Feng. Plasmonic core-shell nano-heterostructures with temperature-dependent optical nonlinearity. NANOSCALE[J]. 2020, 12(45): 22995-23002, http://dx.doi.org/10.1039/d0nr05176d.
[39] 王俊, 杨晓飞. 光子芯片研究进展及展望. 世界科学. 2020, 29-31, http://lib.cqvip.com/Qikan/Article/Detail?id=7103619577.
[40] Li, Rang, Pang, Chi, Li, Ziqi, Yang, Ming, Amekura, Hiroshi, Dong, Ningning, Wang, Jun, Ren, Feng, Wu, Qiang, Chen, Feng. Fused Silica with Embedded 2D-Like Ag Nanoparticle Monolayer: Tunable Saturable Absorbers by Interparticle Spacing Manipulation. LASER & PHOTONICS REVIEWS[J]. 2020, 14(2): https://www.webofscience.com/wos/woscc/full-record/WOS:000506698500001.
[41] Wang, Lei, Zhang, Saifeng, Huang, Jiawei, Mao, Yu, Dong, Ningning, Zhang, Xiaoyan, Kislyakov, Ivan M, Wang, Hongqiang, Wang, Zixin, Chen, Chenduan, Zhang, Long, Wang, Jun. Auger-type process in ultrathin ReS2. OPTICAL MATERIALS EXPRESS[J]. 2020, 10(4): 1092-1104, https://www.webofscience.com/wos/woscc/full-record/WOS:000523221500025.
[42] Lou, Zhiyuan, Zheng, Yinghui, Liu, Candong, Zhang, Luyao, Ge, Xiaochun, Li, Yanyan, Wang, Jun, Zeng, Zhinan, Li, Ruxin, Xu, Zhizhan. Ellipticity dependence of nonperturbative harmonic generation in few-layer MoS2. OPTICS COMMUNICATIONS[J]. 2020, 469: http://dx.doi.org/10.1016/j.optcom.2020.125769.
[43] Diao, Mengjuan, Li, Hui, Hou, Ruipeng, Liang, Ying, Wang, Jun, Luo, Zhishan, Huang, Zhipeng, Zhang, Chi. Vertical Heterostructure of SnS-MoS2 Synthesized by Sulfur-Preloaded Chemical Vapor Deposition. ACS APPLIED MATERIALS & INTERFACES[J]. 2020, 12(6): 7423-7431, https://www.webofscience.com/wos/woscc/full-record/WOS:000514256400064.
[44] Dong, Xuejian, Li, Ziqi, Pang, Chi, Dong, Ningning, Jiang, Hailing, Wang, Jun, Chen, Feng. Q-switched mode-locked Nd:GGG waveguide laser with tin disulfide as saturable absorber. OPTICAL MATERIALS[J]. 2020, 100: http://dx.doi.org/10.1016/j.optmat.2020.109702.
[45] Yang, Qi, Zhang, Xiaoyan, Yang, Zixin, Ren, Xianghe, Nie, Hunkun, Yan, Bingzheng, Yang, Kejian, Zhang, Baitao, He, Jingliang, Wang, Jun. Tellurium as the saturable absorber for the passively Q-switched laser at 1.34 mu m. APPLIED OPTICS[J]. 2020, 59(9): 2892-2896, https://www.webofscience.com/wos/woscc/full-record/WOS:000526529300028.
[46] Liu, Zhiwei, Zhang, Bin, Dong, Ningning, Wang, Jun, Chen, Yu. Perfluorinated gallium phthalocyanine axially grafted black phosphorus nanosheets for optical limiting. JOURNAL OF MATERIALS CHEMISTRY C[J]. 2020, 8(30): 10197-10203, https://www.webofscience.com/wos/woscc/full-record/WOS:000556197600006.
[47] Ding, Jiale, Cui, Zengduo, Dong, Ningning, Li, Bolong, Zhang, Yunhe, Wang, Jun, Jiang, Zhenhua. Enhanced optical limiting properties of composite films consisting of hyperbranched phthalocyanine and polyphenylsulfone with high linear transmittance. SYNTHETIC METALS[J]. 2020, 265: http://dx.doi.org/10.1016/j.synthmet.2020.116405.
[48] Chen, Shoulong, Zhang, Tianju, Liu, Xiaolin, Qiao, Jinli, Peng, Lin, Wang, Jun, Liu, Yongsheng, Yang, Tieying, Lin, Jia. Lattice reconstruction of La-incorporated CsPbI2Br with suppressed phase transition for air-processed all-inorganic perovskite solar cells. JOURNAL OF MATERIALS CHEMISTRY C[J]. 2020, 8(10): 3351-3358, https://www.webofscience.com/wos/woscc/full-record/WOS:000520979400002.
[49] Gan, Fan, Dong, Ningning, Liu, Zhiwei, Jia, Huimei, Wang, Jun, Chen, Yu. Organic Small Molecule Covalently Functionalized Molybdenum Disulfide Hybrid Material for Optical Limiting. BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN[J]. 2020, 93(1): 26-31, https://www.webofscience.com/wos/woscc/full-record/WOS:000504760600004.
[50] Mao, Yu, Dong, Ningning, Wang, Lei, Chen, Xin, Wang, Hongqiang, Wang, Zixin, Kislyakov, Ivan M, Wang, Jun. Machine Learning Analysis of Raman Spectra of MoS2. NANOMATERIALS[J]. 2020, 10(11): https://www.webofscience.com/wos/woscc/full-record/WOS:000594359500001.
[51] Wang, Shixiang, Pang, Chi, Li, Ziqi, Li, Rang, Dong, Ningning, Lu, Qingming, Ren, Feng, Wang, Jun, Chen, Feng. 8.6 GHz Q-switched mode-locked waveguide lasing based on LiNbO3 crystal embedded Cu nanoparticles. OPTICAL MATERIALS EXPRESS[J]. 2019, 9(9): 3808-3817, https://www.webofscience.com/wos/woscc/full-record/WOS:000484086900023.
[52] Wang, Lei, Zhang, Saifeng, McEvoy, Niall, Sun, Yiyang, Huang, Jiawei, Xie, Yafeng, Dong, Ningning, Zhang, Xiaoyan, Kislyakov, Ivan M, Nunzi, JeanMichel, Zhang, Long, Wang, Jun. Nonlinear Optical Signatures of the Transition from Semiconductor to Semimetal in PtSe2. LASER & PHOTONICS REVIEWS[J]. 2019, 13(8): https://www.webofscience.com/wos/woscc/full-record/WOS:000477560800001.
[53] Wu, Kan, Zhang, Xiaoyan, Wang, Jun, Li, Xing, Zou, Weiwen, Chen, Jianping. WS2 based 523 MHz mode-locked erbium-doped fiber laser for microwave photonic application. OPTICAL MATERIALS EXPRESS[J]. 2019, 9(12): 4688-4699, https://www.webofscience.com/wos/woscc/full-record/WOS:000499348700020.
[54] Yafeng Xie, Saifeng Zhang, Yuanxin Li, Ningning Dong, Xiaoyan Zhang, Lei Wang, Weimin Liu, Ivan MKislyakov, JeanMichel Nunzi, Hongji Qi, Long Zhang, Jun Wang. Layer-modulated two-photon absorption in MoS2:probing the shift of the excitonic dark state and band-edge. 光子学研究:英文版[J]. 2019, 7(7): 762-770, http://lib.cqvip.com/Qikan/Article/Detail?id=7002734273.
[55] Dai, Xuran, Zhang, Xiaoyan, Kislyakov, Ivan M, Wang, Lei, Huang, Jiawei, Zhang, Saifeng, Dong, Ningning, Wang, Jun. Enhanced two-photon absorption and two photon luminescence in monolayer MoS2 and WS2 by defect repairing. OPTICS EXPRESS[J]. 2019, 27(10): 13744-13753, [56] Yang, Qi, Zhang, Xiaoyan, Yang, Zixin, Ren, Xianghe, Wang, Jun, Li, Qiaodan, Cui, Xiaoli, Zhu, Xiaolei. Broadband gamma-graphyne saturable absorber for Q-switched solid-state laser. APPLIED PHYSICS EXPRESS[J]. 2019, 12(12): [57] Liang Fang, Xu Hejun, Dong Zuoyuan, Xie Yafeng, Luo Chen, Xia Yin, Zhang Jian, Wang Jun, Wu Xing. Substrates and interlayer coupling effects on Mo1-xWxSe2 alloys. 半导体学报:英文版[J]. 2019, 40(6): 63-68, http://lib.cqvip.com/Qikan/Article/Detail?id=7002201451.
[58] Liu, Zhiwei, Gan, Fan, Dong, Ningning, Zhang, Bin, Wang, Jun, Chen, Yu. Fabrication and nonlinear optical characterization of fluorinated zinc phthalocyanine covalently modified black phosphorus/PMMA films using the nanosecond Z-scan technique. JOURNAL OF MATERIALS CHEMISTRY C[J]. 2019, 7(35): 10789-10794, [59] Wang, Gaozhong, Wang, Kangpeng, McEvoy, Niall, Bai, Zhengyuan, Cullen, Conor P, Murphy, Conor N, McManus, John B, Mogan, John J, Smith, Christopher M, Duesberg, Georg S, Kaminer, Ido, Wang, Jun, Blau, Werner J. Ultrafast Carrier Dynamics and Bandgap Renormalization in Layered PtSe2. SMALL[J]. 2019, 15(34): https://www.webofscience.com/wos/woscc/full-record/WOS:000482491700018.
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[475] Huang Taohua, 周圣明, Teng Hao, Lin Hui, Wang Jun, Han Ping, Zhang Rong. Growth and characterization of ZnO films on (0 0 1), (1 0 0) and (0 1 0) LiGaO 2 substrates. J. cryst. growth[J]. 2008, 310(13): 3144-, http://ir.siom.ac.cn/handle/181231/6113.
[476] Huang Taohua, 周圣明, Teng Hao, Lin Hui, Zou Jun, Zhou Jianhua, Wang Jun. Growth and characterization of high-quality LiAlO 2 single crystal. J. mater. sci. technol.[J]. 2008, 24(2): 145-, http://ir.siom.ac.cn/handle/181231/6111.
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[479] Liu, Ying, Chen, Yu, Cai, Liangzhen, Wang, Jun, Lin, Ying, Doyle, J J, Blau, W J. Optical limiting properties of axially substituted indium phthalocyanines in the solid PMMA composite films. MATERIALS CHEMISTRY AND PHYSICS[J]. 2008, 107(2-3): 189-192, http://dx.doi.org/10.1016/j.matchemphys.2007.09.015.
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[483] Huang, Taohua, Zhou, Shengming, Teng, Hao, Lin, Hui, Wang, Jun, Han, Ping, Zhang, Rong. Growth and characterization of ZnO films on (001), (100) and (010) LiGaO2 substrates. JOURNAL OF CRYSTAL GROWTH[J]. 2008, 310(13): 3144-3148, http://www.corc.org.cn/handle/1471x/2392792.
[484] Huang, Taohua, Zhou, Shengming, Teng, Hao, Lin, Hui, Zou, Jun, Zhou, Jianhua, Wang, Jun. Growth and characterization of high-quality LiAlO2 single crystal. JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY[J]. 2008, 24(2): 145-148, http://lib.cqvip.com/Qikan/Article/Detail?id=26831949.
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[487] Huang Taohua, 周圣明, Teng Hao, Lin Hui, Wang Jun. Growth, etching morphology and spectra of LiAlO 2 crystal. Cryst. res. technol.[J]. 2008, 43(8): 801-, http://ir.siom.ac.cn/handle/181231/6081.
[488] Huang Taohua, 周圣明, Teng Hao, Lin Hui, Wang Jun, Han Ping, Zhang Rong. Growth and characterization of ZnO films on (0 0 1), (1 0 0) and (0 1 0) LiGaO 2 substrates. J. cryst. growth[J]. 2008, 310(13): 3144-, http://ir.siom.ac.cn/handle/181231/6113.
[489] Huang Taohua, 周圣明, Teng Hao, Lin Hui, Zou Jun, Zhou Jianhua, Wang Jun. Growth and characterization of high-quality LiAlO 2 single crystal. J. mater. sci. technol.[J]. 2008, 24(2): 145-, http://ir.siom.ac.cn/handle/181231/6111.
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[493] Taohua HUANG, Shengming ZHOU, Hao TENG, Hui LIN, Jun ZOU, Jianhua ZHOU, Jun WANG. Growth and Characterization of High-quality LiAlO2 Single Crystal. 材料科学技术学报:英文版. 2008, 24(2): 145-148, http://lib.cqvip.com/Qikan/Article/Detail?id=26831949.
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[495] Doyle, James J, Wang, Jun, OFlaherty, Sean M, Chen, Yu, Slodek, A, Hegarty, T, Carpenter, Les E, II, Woehrle, D, Hanack, M, Blau, Werner J. Nonlinear optical performance of chemically tailored phthalocyanine-polymer films as solid-state optical limiting devices. JOURNAL OF OPTICS A-PURE AND APPLIED OPTICS[J]. 2008, 10(7): https://www.webofscience.com/wos/woscc/full-record/WOS:000257177400012.
[496] Huang, Taohua, Zhou, Shengming, Teng, Hao, Lin, Hui, Wang, Jun, Han, Ping, Zhang, Rong. Growth and characterization of ZnO films on (001), (100) and (010) LiGaO2 substrates. JOURNAL OF CRYSTAL GROWTH[J]. 2008, 310(13): 3144-3148, http://www.corc.org.cn/handle/1471x/2392792.
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[501] Huang Taohua, 周圣明, Teng Hao, Lin Hui, Wang Jun, Han Ping, Zhang Rong. Growth and characterization of ZnO films on (0 0 1), (1 0 0) and (0 1 0) LiGaO 2 substrates. J. cryst. growth[J]. 2008, 310(13): 3144-, http://ir.siom.ac.cn/handle/181231/6113.
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[546] Ye, C, Shi, L, Wang, J, Lo, D, Zhu, XL. Simultaneous generation of multiple pairs of transverse electric and transverse magnetic output modes from titania zirconia organically modified silicate distributed feedback waveguide lasers. APPLIED PHYSICS LETTERS[J]. 2003, 83(20): 4101-4103, https://www.webofscience.com/wos/woscc/full-record/WOS:000186523400007.
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[548] Shi, L, Zhang, GX, Wang, J, Lo, D. Distributed feedback laser action in sol-gel glass symmetric waveguides. JOURNAL OF OPTICS A-PURE AND APPLIED OPTICSnull. 2003, 5(2): L1-L4, https://www.webofscience.com/wos/woscc/full-record/WOS:000182215700001.
[549] Lo, D, Ye, C, Wang, J. Distributed feedback laser action by polarization modulation. APPLIED PHYSICS B-LASERS AND OPTICS[J]. 2003, 76(6): 649-653, https://www.webofscience.com/wos/woscc/full-record/WOS:000183584800006.
[550] Ye, C, Shi, L, Wang, J, Lo, D, Zhu, XL. Simultaneous generation of multiple pairs of transverse electric and transverse magnetic output modes from titania zirconia organically modified silicate distributed feedback waveguide lasers. APPLIED PHYSICS LETTERS[J]. 2003, 83(20): 4101-4103, https://www.webofscience.com/wos/woscc/full-record/WOS:000186523400007.
[551] Wang, J, Zhang, GX, Shi, L, Lo, D, Zhu, XL. Tunable multiwavelength distributed-feedback zirconia waveguide lasers. OPTICS LETTERS[J]. 2003, 28(2): 90-92, https://www.webofscience.com/wos/woscc/full-record/WOS:000180433600008.
[552] Shi, L, Zhang, GX, Wang, J, Lo, D. Distributed feedback laser action in sol-gel glass symmetric waveguides. JOURNAL OF OPTICS A-PURE AND APPLIED OPTICSnull. 2003, 5(2): L1-L4, https://www.webofscience.com/wos/woscc/full-record/WOS:000182215700001.
[553] Lo, D, Ye, C, Wang, J. Distributed feedback laser action by polarization modulation. APPLIED PHYSICS B-LASERS AND OPTICS[J]. 2003, 76(6): 649-653, https://www.webofscience.com/wos/woscc/full-record/WOS:000183584800006.
[554] Ye, C, Shi, L, Wang, J, Lo, D, Zhu, XL. Simultaneous generation of multiple pairs of transverse electric and transverse magnetic output modes from titania zirconia organically modified silicate distributed feedback waveguide lasers. APPLIED PHYSICS LETTERS[J]. 2003, 83(20): 4101-4103, https://www.webofscience.com/wos/woscc/full-record/WOS:000186523400007.
[555] Wang, J, Zhang, GX, Shi, L, Lo, D, Zhu, XL. Tunable multiwavelength distributed-feedback zirconia waveguide lasers. OPTICS LETTERS[J]. 2003, 28(2): 90-92, https://www.webofscience.com/wos/woscc/full-record/WOS:000180433600008.
[556] Lo, D, Shi, L, Wang, J, Zhang, GX, Zhu, XL. Zirconia and zirconia-organically modified silicate distributed feedback waveguide lasers tunable in the visible. APPLIED PHYSICS LETTERS[J]. 2002, 81(15): 2707-2709, https://www.webofscience.com/wos/woscc/full-record/WOS:000178318400011.
[557] Lo, D, Shi, L, Wang, J, Zhang, GX, Zhu, XL. Zirconia and zirconia-organically modified silicate distributed feedback waveguide lasers tunable in the visible. APPLIED PHYSICS LETTERS[J]. 2002, 81(15): 2707-2709, https://www.webofscience.com/wos/woscc/full-record/WOS:000178318400011.
[558] Lo, D, Shi, L, Wang, J, Zhang, GX, Zhu, XL. Zirconia and zirconia-organically modified silicate distributed feedback waveguide lasers tunable in the visible. APPLIED PHYSICS LETTERS[J]. 2002, 81(15): 2707-2709, https://www.webofscience.com/wos/woscc/full-record/WOS:000178318400011.
发表著作
(1) 纳米科学与技术百科全书(邀请章节), Encyclopedia of Nanoscience and Nanotechnology, Nanomaterials for optical limiting (Invited chapter), American Scientific Publishers, 2011-07, 第 2 作者
(2) 碳纳米管(邀请章节), Carbon Nanotubes, Nonlinear Optical Properties of Graphene and Carbon Nanotube Composites (Invited chapter), InTech - Open Access Publisher, 2011-07, 第 1 作者

科研活动

   
科研项目
( 1 ) xxx启动经费, 主持, 部委级, 2010-12--2014-12
( 2 ) xxx超快动力学瞬态喇曼检测研究 , 主持, 国家级, 2011-08--2012-07
( 3 ) 纳米非线性光学效应、材料与器件, 主持, 国家级, 2016-01--2018-12
( 4 ) 硫系半导体二维纳米材料及其超快非线性光学性质研究, 主持, 国家级, 2014-01--2016-12
( 5 ) 基于过渡金属硫化物单分子层的光子学材料与器件研究, 主持, 部委级, 2014-01--2016-12
( 6 ) 新型强激光材料研究, 主持, 部委级, 2016-06--2021-06
( 7 ) 二维半导体超强超快光场调制技术及物理, 主持, 部委级, 2016-08--2021-07
( 8 ) 二维光子功能半导体的光电调控技术及其物理, 主持, 省级, 2017-05--2020-04
( 9 ) 层状半导体主动调制非线性光谱特性研究, 主持, 国家级, 2017-01--2020-12
参与会议
(1)Graphene and carbon nanotube composites for laser protection   Jun Wang   2011-05-13
(2)纳米光子学前沿与挑战   创新2020-激光科学、技术与工程的前沿与挑战研讨会   Jun Wang   2011-04-16
(3)Nonlinear Optical Study of Graphene Dispersions in Nanosecond and Femtosecond Regimes   Jun Wang   2009-12-01
(4)Carbon Nanotubes and Graphenes for Optical Limiting   Jun Wang   2009-09-20
(5)Graphenes and Carbon Nanotubes for Optical Limiting   Jun Wang   2009-09-03
(6)Carbon Nanotubes and Graphenes for Nonlinear Optical Application   Jun Wang   2009-08-26
(7)Broadband Nonlinear Optical Response of Graphene Dispersions   Jun Wang   2009-03-02
(8)Linear and nonlinear optical properties of phthalocyanine-carbon nanotube blends   Jun Wang   2008-08-03
(9)Nonlinear Optical and Optical Limiting Properties of Carbon Nanotubes   Jun Wang   2008-04-07
(10)Nonlinear Optical Properties of Single-Walled Carbon Nanotubes in Different Solvents   Jun Wang   2007-12-17
(11)Optical Limiting Properties of Single-Walled Carbon Nanotubes: Solvent Effect and Individual Nanotubes   Jun Wang   2007-08-29
(12)Polarization Properties of Distributed Feedback Lasers and Microring Lasers   Jun Wang   2007-06-15
(13)One-photon, two-photon-pumped distributed feedback sol-gel zirconia waveguide lasers   Jun Wang   2005-07-12