Theory and technology of SPASERs

被引:101
作者
Premaratne, Malin [1 ]
Stockman, Mark I. [2 ,3 ]
机构
[1] Monash Univ, Dept Elect & Comp Syst Engn, Adv Comp & Simulat Lab A L, Clayton, Vic 3800, Australia
[2] Georgia State Univ, Ctr Nanoopt, Atlanta, GA 30303 USA
[3] Georgia State Univ, Dept Phys & Astron, Atlanta, GA 30303 USA
基金
澳大利亚研究理事会;
关键词
SURFACE-PLASMON-RESONANCE; ELECTROMAGNETIC ENERGY-TRANSPORT; GAIN-ASSISTED PROPAGATION; TRIANGULAR METAL WEDGES; CAGED GOLD NANORODS; WAVE-GUIDE; ELECTRONIC EXCITATIONS; TRANSFORMATION OPTICS; THEORETICAL-ANALYSIS; GRAPHENE PLASMONICS;
D O I
10.1364/AOP.9.000079
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Spaser is an acronym for surface plasmon amplification by stimulated emission of radiation. A spaser is effectively a nanoscale laser with subwavelength dimensions and a low-Q plasmonic resonator, which sustains its oscillations using stimulated emission of surface plasmons. The concept of stimulated emission to sustain plasmonic oscillations in a resonator was first described by David Bergman and Mark Stockman in 2003. Using a unified notation, we provide an up-to-date literature review of the major developments and latest advances in spaser theory and carry out a systematic exposition of some of the key results useful to understand the operation of spasers. Our presentation covers both semiclassical and quantum-mechanical formulations of spaser models as well as various designs and technologies demonstrated/suggested to illustrate key aspects of this technology. Even though many advances have already been made in spaser technology, there are many hurdles that need to be overcome to bring this technology up to the level of modern laser technology. We take especially great care to highlight the main challenges facing various spaser designs and the limitations of widely used methods and materials. This review is written for both specialists in the field and a general engineering-physics-chemistry readership. (C) 2017 Optical Society of America
引用
收藏
页码:79 / 128
页数:50
相关论文
共 282 条
[61]   A rocky road to plasmonic lasers [J].
Gather, Malte C. .
NATURE PHOTONICS, 2012, 6 (11) :708-708
[62]  
Gather MC, 2010, NAT PHOTONICS, V4, P457, DOI [10.1038/nphoton.2010.121, 10.1038/NPHOTON.2010.121]
[63]   Low threshold room-temperature lasing of CdS nanowires [J].
Geburt, Sebastian ;
Thielmann, Andreas ;
Roeder, Robert ;
Borschel, Christian ;
McDonnell, Amanda ;
Kozlik, Michael ;
Kuehnel, Julian ;
Sunter, Kristen A. ;
Capasso, Federico ;
Ronning, Carsten .
NANOTECHNOLOGY, 2012, 23 (36)
[64]   Efficient and exact numerical approach for many multi-level systems in open system CQED [J].
Gegg, Michael ;
Richter, Marten .
NEW JOURNAL OF PHYSICS, 2016, 18
[65]   Anomalous spectral scaling of light emission rates in low-dimensional metallic nanostructures [J].
Genov, D. A. ;
Oulton, R. F. ;
Bartal, G. ;
Zhang, X. .
PHYSICAL REVIEW B, 2011, 83 (24)
[66]   ELECTROMAGNETIC THEORY OF ENHANCED RAMAN-SCATTERING BY MOLECULES ADSORBED ON ROUGH SURFACES [J].
GERSTEN, J ;
NITZAN, A .
JOURNAL OF CHEMICAL PHYSICS, 1980, 73 (07) :3023-3037
[67]   SPECTROSCOPIC PROPERTIES OF MOLECULES INTERACTING WITH SMALL DIELECTRIC PARTICLES [J].
GERSTEN, J ;
NITZAN, A .
JOURNAL OF CHEMICAL PHYSICS, 1981, 75 (03) :1139-1152
[68]   Sellmeier coefficients and dispersion of thermo-optic coefficients for some optical glasses [J].
Ghosh, G .
APPLIED OPTICS, 1997, 36 (07) :1540-1546
[69]   Semiconductor model for quantum-dot-based microcavity lasers [J].
Gies, Christopher ;
Wiersig, Jan ;
Lorke, Michael ;
Jahnke, Frank .
PHYSICAL REVIEW A, 2007, 75 (01)
[70]  
Goncalves P. A. D., 2016, An Introduction to Graphene Plasmonics, DOI 10.1142/9948