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[课题组] 北京大学化学与分子工程学院物理化学研究所童廉明

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发表于 2018-3-21 08:34:43 | 只看该作者 回帖奖励 |倒序浏览 |阅读模式
童廉明
副研究员
联系地址: A411
联系电话: 010-62767065
E-mail: tonglm@pku.edu.cn
个人主页: www.chem.pku.edu.cn/cnc/cn/zxcy/jy/253566.shtml
学术简历
•        1998.9-2002.7,北京大学,化学与分子工程学院,学士
•        2002.9-2007.7,北京大学,化学与分子工程学院,博士
•        2007.9-2011.8,瑞典查尔摩斯大学,应用物理系,博士后
•        2011.9-2015.2,中国科学院物理研究所,所级百人计划,副研究员
•        2015.3-,北京大学,化学与分子工程学院,副研究员
研究领域
金属纳米结构的表面等离激元共振产生局域电磁场增强,可以极大的增强表面分子的光学响应。表面增强光谱的增强机制包括电磁场增强和化学增强,具有单分子的检测灵敏度。二维原子晶体材料由于其独特的结构和光学性质,为表面增强光谱的机理和应用研究提供了全新的思路。
主要研究方向包括:
1.        基于二维原子晶体材料的表面增强拉曼散射(SERS)研究
2.        二维原子晶体材料的各向异性光学光谱研究
3.        碳纳米材料和二维原子晶体材料的近场光学光谱研究
论文发表
1.        Anni Lehmuskero, Peter Johansson, Halina Rubinsztein-Dunlop, Lianming Tong*, and Mikael Käll*, "Laser Trapping of Colloidal Metal Nanoparticles", ACS Nano, 2015, 9, 3453-3469
2.        Lianming Tong, Hong Wei, Shunping Zhang, and Hongxing Xu*, "Recent Advances in Plasmonic Sensors", Sensors, 2014, 14, 7959-7973
3.        杨翠,魏少鹏,童廉明*,"表面等离激元光学力研究进展",《中国科学: 物理学 力学 天文学》, 2014,44, 1127-1139
4.        Lianming Tong*, Hongxing Xu*, and Mikael Käll*, "Nanogaps for SERS applications", MRS Bull., 2014, 39, 163-168
5.        Lianming Tong and Hongxing Xu*, "Frontiers of Plasmonics", Front. Phys., 2014, 9, 1-2
6.        Zhipeng Li*, Shunping Zhang, Lianming Tong, Peijie Wang, Bin Dong, Hongxing Xu, "Ultra-Sensitive Size-Selection of Plasmonic Nanoparticles by Fano Interference Optical Force", ACS Nano, 2014, 8, 701-708
7.        Xiaorui Tian, Lianming Tong, Hongxing Xu*, "New progress of plasmonics in complex metal nanostructures", Sci. China Phys. Mech. Astron., 2013, 56, 2327-2336
8.        Lianming Tong, Hong Wei, Shunping Zhang, Zhipeng Li and Hongxing Xu*, "Optical properties of single coupled plasmonic nanoparticles", Phys. Chem. Chem. Phys., 2013, 15, 4100-4109
9.        Lianming Tong, Tavakol Pakizeh*, Laurent. Feuz and Alexandre Dmitriev*, "Highly directional bottom-up 3D nanoantenna for visible light", Sci. Rep., 2013, 3, 2311
10.        Bjoern Niesen*, Barry P. Rand, Pol Van Dorpe, David Cheyns, Lianming Tong, Alexandre Dmitriev and Paul Heremans*, "Plasmonic Efficiency Enhancement of High Performance Organic Solar Cells with a Nanostructured Rear Electrode", Adv. Energy Mater., 2013, 3, 145-150
11.        童廉明*,徐红星*, "表面等离激元——机理,应用与展望", 《物理》, 2012, 41, 582-588
12.        Ounsi El Daif*, Lianming Tong, Bruno Figeys, Kris Van Nieuwenhuysen, Alexander Dmitriev, Pol Van Dorpe*, Ivan Gordon and Frederic Dross, "Front side plasmonic effect on thin silicon epitaxial solar cells", Sol. Energ. Mat. Sol. C., 2012, 104, 58-63
13.        Lianming Tong, Tao Zhu and Zhongfan Liu*, "Approaching the electromagnetic mechanism of surface-enhanced Raman scattering: from self-assembled arrays to individual gold nanoparticles", Chem. Soc. Rev., 2011, 40, 1296-1304
14.        Lianming Tong*, Vladimir D. Miljkovic, Peter Johansson and Mikael Käll*, "Plasmon Hybridization Reveals the Interaction between Individual Colloidal Gold Nanoparticles Confined in an Optical Potential Well", Nano Lett., 2011, 11, 4505-4508
15.        Lianming Tong*, Vladimir D. Miljković and Mikael Käll*, "Alignment, Rotation, and Spinning of Single Plasmonic Nanoparticles and Nanowires Using Polarization Dependent Optical Forces", Nano Lett., 2010, 10, 268-273
16.        Lianming Tong, Maurizio Righini, Maria Ujue Gonzalez, Romain Quidant and Mikael Käll*, "Optical aggregation of metal nanoparticles in a microfluidic channel for surface-enhanced Raman scattering analysis", Lab Chip, 2009, 9, 193-195
17.        Lianming Tong, Zhipeng Li, Hongxing Xu, Tao Zhu* and Zhongfan Liu*, "Single Gold-Nanoparticle-Enhanced Raman Scattering of Individual Single-walled Carbon Nanotubes via Atomic Force Microscope Manipulation", J. Phys. Chem. C, 2008, 112, 7119-7123
18.        Lianming Tong, Tao Zhu* and Zhongfan Liu*, "Atomic force microscope manipulation of gold nanoparticles for controlled Raman enhancement", Appl. Phys. Lett., 2008, 92, 023109
19.        Lianming Tong, Tao Zhu* and Zhongfan Liu*, "Laser irradiation induced spectral evolution of the surface-enhanced Raman scattering (SERS) of 4-tert-butylbenzylmercaptan on gold nanoparticles assembly", Sci. China B-Chem, 2008, 50(4), 520-525
20.        Zhuo Chen, Lianming Tong, Zhongyun Wu, and Zhongfan Liu*, "Fabrication of electromechanical switch using interconnected single-walled carbon nanotubes", Appl. Phys. Lett., 2008, 92, 103116
21.        Fang Chen, Quan Qing, Liang Ren, Lianming Tong, Zhongyun Wu and Zhongfan Liu*, "Formation of nanogaps by nanoscale Cu electrodeposition and dissolution", Electrochimica Acta, 2007, 52, 4210-4214
22.        Zhuo Chen, Zhongyun Wu, Lianming Tong, Huapu Pan and Zhongfan Liu*, "Simultaneous Dielectrophoretic Separation and Assembly of Single-Walled Carbon Nanotubes on Multigap Nanoelectrodes and Their Thermal Sensing Properties", Anal. Chem., 2006, 78(23); 8069-8075
23.        Jianwei Zhao, Yan Zhang, Chuanguo Shi, Hongyuan Chen, Lianming Tong, Tao Zhu and Zhongfan Liu, "Electrochemical deposition of Prussian blue on hydrogen terminated silicon(111)", Thin Solid Films, 2006, 515, 1847-1850
24.        Linyou Cao, Peng Diao, Lianming Tong, Tao Zhu, Zhongfan Liu*, "Surface-Enhanced Raman Scattering of p-Aminothiophenol on a Au(core)/Cu(shell) Nanoparticle Assembly", ChemPhysChem, 2005, 6(5); 913-918
25.        Hailin Peng, Zhuo Chen, Lianming Tong, Xuechun Yu, Chunbo Ran and Zhongfan Liu*, "Thermochemical Hole Burning on a Triethylammonium Bis-7,7,8,8-tetracyanoquinodimethane Charge-Transfer Complex Using Single-Walled Carbon Nanotube Scanning Tunneling Microscopy Tips", J. Phys. Chem. B.; 2005, 109(8), 3526-3530
26.        Xing Ling, Xin Zhu, Jin Zhang, Tao Zhu, Lianming Tong, Zhongfan Liu*, "Reproducible Patterning of Single Au Nanoparticles on Silicon Substrates by Scanning Probe Oxidation and Self-Assembly", J. Phys. Chem. B., 2005, 109(7); 2657-2655
27.        Linyou Cao, Lianming Tong, Peng Diao, Tao Zhu and Zhongfan Liu*, "Kinetically Controlled Pt Deposition onto Self-Assembled Au Colloids: Preparation of Au (Core)-Pt (Shell) Nanoparticle Assemblies", Chem. Mater., 2004, 16(17); 3239-3245


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