共 33 条
Temperature mapping near plasmonic nanostructures using fluorescence polarization anisotropy
被引:150
作者:

Baffou, G.
论文数: 0 引用数: 0
h-index: 0
机构:
Inst Ciencies Foton, ICFO, Castelldefels 08860, Barcelona, Spain Inst Ciencies Foton, ICFO, Castelldefels 08860, Barcelona, Spain

Kreuzer, M. P.
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机构:
Inst Ciencies Foton, ICFO, Castelldefels 08860, Barcelona, Spain Inst Ciencies Foton, ICFO, Castelldefels 08860, Barcelona, Spain

Kulzer, F.
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机构:
Inst Ciencies Foton, ICFO, Castelldefels 08860, Barcelona, Spain Inst Ciencies Foton, ICFO, Castelldefels 08860, Barcelona, Spain

Quidant, R.
论文数: 0 引用数: 0
h-index: 0
机构:
Inst Ciencies Foton, ICFO, Castelldefels 08860, Barcelona, Spain Inst Ciencies Foton, ICFO, Castelldefels 08860, Barcelona, Spain
机构:
[1] Inst Ciencies Foton, ICFO, Castelldefels 08860, Barcelona, Spain
来源:
OPTICS EXPRESS
|
2009年
/
17卷
/
05期
关键词:
NANOPARTICLES;
MICROSCOPY;
D O I:
10.1364/OE.17.003291
中图分类号:
O43 [光学];
学科分类号:
070207 ;
0803 ;
摘要:
We report on a thermal imaging technique based on fluorescence polarization anisotropy measurements, which enables mapping the local temperature near nanometer-sized heat sources with 300 nm spatial resolution and a typical accuracy of 0.1 degrees C. The principle is demonstrated by mapping the temperature landscape around plasmonic nano-structures heated by near-infrared light. By assessing directly the molecules' Brownian dynamics, it is shown that fluorescence polarization anisotropy is a robust and reliable method which overcomes the limitations of previous thermal imaging techniques. It opens new perspectives in medicine, nanoelectronics and nanofluidics where a control of temperature of a few degrees at the nanoscale is required. (c) 2009 Optical Society of America
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页码:3291 / 3298
页数:8
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