A temperature microsensor for measuring laser-induced heating in gold nanorods

被引:0
作者
Dennis B. Pacardo
Bhanu Neupane
Gufeng Wang
Zhen Gu
Glenn M. Walker
Frances S. Ligler
机构
[1] University of North Carolina at Chapel Hill and North Carolina State University,Joint Department of Biomedical Engineering
[2] North Carolina State University,Department of Chemistry
来源
Analytical and Bioanalytical Chemistry | 2015年 / 407卷
关键词
Microsensor; Gold nanorods; Temperature; Nanoparticles; Microfluidics;
D O I
暂无
中图分类号
学科分类号
摘要
Measuring temperature is an extensively explored field of analysis, but measuring a temperature change in a nanoparticle is a new challenge. Here, a microsensor is configured to measure temperature changes in gold nanorods in solution upon laser irradiation. The device consists of a silicon wafer coated with silicon nitride in which a microfabricated resistance temperature detector was embedded and attached to a digital multimeter. A polydimethylsiloxane mold served as a microcontainer for the sample attached on top of the silicon membrane. This enables laser irradiation of the gold nanorods and subsequent measurement of temperature changes. The results showed a temperature increase of 8 to 10 °C and good correlation with theoretical calculations and bulk sample direct temperature measurements. These results demonstrate the suitability of this simple temperature microsensor for determining laser-induced heating profiles of metallic nanomaterials; such measurements will be essential for optimizing therapeutic and catalytic applications.
引用
收藏
页码:719 / 725
页数:6
相关论文
共 50 条
[21]   Mini-review on laser-induced nanoparticle heating and melting [J].
Baimler, Ilya V. ;
Simakin, Alexander V. ;
Dorokhov, Alexey S. ;
Gudkov, Sergey V. .
FRONTIERS IN CHEMISTRY, 2024, 12
[22]   Microwave rapid heating for the synthesis of gold nanorods [J].
Liu, FK ;
Chang, YC ;
Ko, FH ;
Chu, TC .
MATERIALS LETTERS, 2004, 58 (3-4) :373-377
[23]   Thermo-responsive polymer encapsulated gold nanorods for single continuous wave laser-induced photodynamic/photothermal tumour therapy [J].
Beilei Gong ;
Yuanbing Shen ;
Huiyan Li ;
Xiaojun Li ;
Xia Huan ;
Jihong Zhou ;
Yuqing Chen ;
Jian Wu ;
Wei Li .
Journal of Nanobiotechnology, 19
[24]   Photothermal effects in connective tissues mediated by laser-activated gold nanorods [J].
Ratto, Fulvio ;
Matteini, Paolo ;
Rossi, Francesca ;
Menabuoni, Luca ;
Tiwari, Neha ;
Kulkarni, Sulabha K. ;
Pini, Roberto .
NANOMEDICINE-NANOTECHNOLOGY BIOLOGY AND MEDICINE, 2009, 5 (02) :143-151
[25]   Nd:YAG laser-induced morphology change and photothermal conversion of gold nanorods with potential application in the treatment of port-wine stain [J].
Linzhuang Xing ;
Bin Chen ;
Dong Li ;
Jun Ma ;
Wenjuan Wu ;
Guoxiang Wang .
Lasers in Medical Science, 2017, 32 :629-640
[26]   Laser-induced heating for cell release and cellular DNA denaturation in a microfluidics [J].
Min-Sheng Hung ;
Yi-Tsung Huang .
BioChip Journal, 2013, 7 :319-324
[27]   Laser-induced heating for cell release and cellular DNA denaturation in a microfluidics [J].
Hung, Min-Sheng ;
Huang, Yi-Tsung .
BIOCHIP JOURNAL, 2013, 7 (04) :319-324
[28]   CW laser-induced photothermal conversion and shape transformation of gold nanodogbones in hydrated chitosan films [J].
Ratto, Fulvio ;
Matteini, Paolo ;
Cini, Alberto ;
Centi, Sonia ;
Rossi, Francesca ;
Fusi, Franco ;
Pini, Roberto .
JOURNAL OF NANOPARTICLE RESEARCH, 2011, 13 (09) :4337-4348
[29]   Laser-induced damage thresholds of gold, silver and their alloys in air and water [J].
Starinskiy, Sergey V. ;
Shukhov, Yuri G. ;
Bulgakov, Alexander V. .
APPLIED SURFACE SCIENCE, 2017, 396 :1765-1774
[30]   Laser-Induced Plasmonic Nanobubbles and Microbubbles in Gold Nanorod Colloidal Solution [J].
Yu, Shang-Yang ;
Tu, Chang-Hsuan ;
Liaw, Jiunn-Woei ;
Kuo, Mao-Kuen .
NANOMATERIALS, 2022, 12 (07)