个人信息Personal Information
教授
博士生导师
硕士生导师
性别:男
毕业院校:大阪府立大学
学位:博士
所在单位:物理学院
学科:光学. 凝聚态物理. 微电子学与固体电子学
办公地点:物理学院333室
电子邮箱:lpan@dlut.edu.cn
Highly Efficient Near-Infrared Photothermal Conversion of a Single Carbon Nanocoil Indicated by Cell Ejection
点击次数:
论文类型:期刊论文
发表时间:2018-12-06
发表刊物:JOURNAL OF PHYSICAL CHEMISTRY C
收录刊物:SCIE、Scopus
卷号:122
期号:48
页面范围:27696-27701
ISSN号:1932-7447
关键字:Carbon; Cytology; Flow velocity; Heat transfer coefficients; Infrared devices, Convective heat transfer Coefficient; Helical morphologies; Near-infrared absorption; NIR laser irradiation; Photo-thermal conversions; Photoelectrical response; Photothermal conversion efficiencies; Thermal convections, Heat convection
摘要:Carbon nanocoil (CNC), which has excellent properties of near-infrared (NIR) absorption and photoelectrical response, is considered as a potential NIR sensing and bioengineering material. In this work, a high-speed living cell ejection is realized in a yeast cell solution based on the photothermal conversion induced by a NIR laser irradiation on the surface of a CNC. The cell ejection reveals a thermal convection of solution induced by the laser irradiated CNC and can be used to evaluate the photothermal conversion ability of CNC. The dynamic behavior of the thermal convection behind cell ejection is studied experimentally and analytically. It is found that the initial solution flow velocity of the dynamic process reaches more than 10(3) mu m/s. Approximately, 60% of the laser energy illuminated on the CNC is converted into thermal energy. The unique helical morphology of CNC enables its high NIR photothermal conversion efficiency. The average convective heat transfer coefficient on the contact area between CNC and surrounding water is deduced to be as high as 7.0 X 10(5) W/(m(2).K). These results indicate that CNC has promising potential applications on microfluidics, laser-operated flow cytometers, bioparticle ejection, and micro-/nano-laser-operated heat generators and exchangers.