Nanoscale Control of Optical Heating in Complex Plasmonic Systems

被引:612
作者
Baffou, Guillaume [2 ]
Quidant, Romain [2 ,3 ]
Javier Garcia de Abajo, F. [1 ]
机构
[1] CSIC, Inst Opt, E-28006 Madrid, Spain
[2] ICFO, Barcelona 08860, Spain
[3] ICREA, Barcelona 08010, Spain
关键词
plasmonics; optical heating; thermodynamics; nanophotonics boundary element method; nanoscale control; ELECTROMAGNETIC ENERGY-TRANSPORT; METAL NANOPARTICLES; LIMIT;
D O I
10.1021/nn901144d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We introduce a numerical technique to investigate the temperature distribution in arbitrarily complex plasmonic systems subject to external illumination, We perform both electromagnetic and thermodynamic calculations based upon a time-efficient boundary element method. Two kinds of plasmonic systems are investigated in order to illustrate the potential of such a technique. First, we focus on individual particles with various morphologies. In analogy with electrostatics, we introduce the concept of thermal capacitance. This geometry-dependent quantity allows us to assess the temperature increase inside a plasmonic particle from the sole knowledge of its absorption cross section. We present universal thermal-capacitance curves for ellipsoids, rods, disks, and rings. Additionally, we investigate assemblies of nanoparticles in close proximity and show that, despite its diffusive nature, the temperature distribution can be made highly non-uniform even at the nanoscale using plasmonic systems. A significant degree of nanoscale control over the individual temperatures of neighboring particles is demonstrated, depending on the external light wavelength and direction of incidence. We illustrate this concept with simulations of gold sphere dimers and chains in water. Our work opens new possibilities for selectively controlling processes such as local melting for dynamic patterning of textured materials, chemical and metabolic thermal activation, and heat delivery for producing mechanical motion with spatial precision in the nanoscale.
引用
收藏
页码:709 / 716
页数:8
相关论文
共 32 条
[21]   Therapeutic possibilities of plasmonically heated gold nanoparticles [J].
Pissuwan, D ;
Valenzuela, SM ;
Cortie, MB .
TRENDS IN BIOTECHNOLOGY, 2006, 24 (02) :62-67
[22]  
POLLOCK HM, 2001, J PHYS D, V34, pA7502
[23]   Electromagnetic energy transport via linear chains of silver nanoparticles [J].
Quinten, M ;
Leitner, A ;
Krenn, JR ;
Aussenegg, FR .
OPTICS LETTERS, 1998, 23 (17) :1331-1333
[24]   Experimental and Theoretical Studies of Light-to-Heat Conversion and Collective Heating Effects in Metal Nanoparticle Solutions [J].
Richardson, Hugh H. ;
Carlson, Michael T. ;
Tandler, Peter J. ;
Hernandez, Pedro ;
Govorov, Alexander O. .
NANO LETTERS, 2009, 9 (03) :1139-1146
[25]   Plasmons in nearly touching metallic nanoparticles: singular response in the limit of touching dimers [J].
Romero, Isabel ;
Aizpurua, Javier ;
Bryant, Garnett W. ;
Garcia de Abajo, F. Javier .
OPTICS EXPRESS, 2006, 14 (21) :9988-9999
[26]   Temperature measurement in microfluidic systems using a temperature-dependent fluorescent dye [J].
Ross, D ;
Gaitan, M ;
Locascio, LE .
ANALYTICAL CHEMISTRY, 2001, 73 (17) :4117-4123
[27]   The role of metal nanoparticles in remote release of encapsulated materials [J].
Skirtach, AG ;
Dejugnat, C ;
Braun, D ;
Susha, AS ;
Rogach, AL ;
Parak, WJ ;
Möhwald, H ;
Sukhorukov, GB .
NANO LETTERS, 2005, 5 (07) :1371-1377
[28]   Preparation of nanoscale gold structures by nanolithography [J].
Stokes, Nicholas ;
McDonagh, Andrew M. ;
Cortie, Michael B. .
GOLD BULLETIN, 2007, 40 (04) :310-320
[29]   Controlled Nanometric Phase Transitions of Phospholipid Membranes by Plasmonic Heating of Single Gold Nanoparticles [J].
Urban, A. S. ;
Fedoruk, M. ;
Horton, M. R. ;
Raedler, J. O. ;
Stefani, F. D. ;
Feldmann, J. .
NANO LETTERS, 2009, 9 (08) :2903-2908
[30]   Thermal Memory: A Storage of Phononic Information [J].
Wang, Lei ;
Li, Baowen .
PHYSICAL REVIEW LETTERS, 2008, 101 (26)