Surface plasmon sorting and engineered dispersion curves using multilayer doped semiconductors

被引:4
作者
Jung, Young Uk [1 ]
Mandel, Isroel M. [1 ,2 ]
Bendoym, Igor [3 ]
Golovin, Andrii B. [1 ]
Crouse, David T. [1 ]
机构
[1] CUNY City Coll, Dept Elect Engn, 160 Convent Ave, New York, NY 10031 USA
[2] Grad Ctr, Dept Phys, New York, NY 10016 USA
[3] Phoebus Optoelect LLC, New York, NY 10003 USA
关键词
THIN-FILMS; LIGHT; METAMATERIALS;
D O I
10.1364/JOSAB.32.001007
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
A method to engineer complex shapes into the dispersion curves (DCs) of surface plasmon (SP) in flat multilayer structures composed of doped semiconductors is shown analytically and numerically. It is shown that the shapes of SP DCs in multilayer structures can be engineered by controlling not only the free electron density in each layer, as has been well described in past literature on the subject, but also by controlling the spatial profiles of the electromagnetic fields associated with surface plasmons. It is the ability to impart complex shapes in the SP DCs that is new and described in this paper-and not just raising or lowering the surface plasmon energies as a function of free electron concentration. DCs with stair-step or dove-tail shapes are possible. In this work, a method to design structures that support SPs with DCs of arbitrary shapes is described. An analytical description of the design methodology is developed, and the resulting structures are numerically modeled using continuous wave excitation and time-dependent pulsed excitation. Time domain studies of the creation and decay in which the SPs are performed, along with spatial sorting of the SPs, yield results in agreement with the predictions of the analytic model. (C) 2015 Optical Society of America
引用
收藏
页码:1007 / 1012
页数:6
相关论文
共 31 条
[21]   Dispersion engineering of surface plasmons [J].
Mandel, Isroel M. ;
Bendoym, Igor ;
Jung, Young U. ;
Golovin, Andrii B. ;
Crouse, David T. .
OPTICS EXPRESS, 2013, 21 (26) :31883-31893
[22]   Photon sorting in the near field using subwavelength cavity arrays in the near-infrared [J].
Mandel, Isroel M. ;
Lansey, Eli ;
Gollub, Jonah N. ;
Sarantos, Chris H. ;
Akhmechet, Roman ;
Golovin, Andrii B. ;
Crouse, David T. .
APPLIED PHYSICS LETTERS, 2013, 103 (25)
[23]   Oxides and nitrides as alternative plasmonic materials in the optical range [Invited] [J].
Naik, Gururaj V. ;
Kim, Jongbum ;
Boltasseva, Alexandra .
OPTICAL MATERIALS EXPRESS, 2011, 1 (06) :1090-1099
[24]   Extreme tunability in aluminum doped Zinc Oxide plasmonic materials for near-infrared applications [J].
Pradhan, A. K. ;
Mundle, R. M. ;
Santiago, Kevin ;
Skuza, J. R. ;
Xiao, Bo ;
Song, K. D. ;
Bahoura, M. ;
Cheaito, Ramez ;
Hopkins, Patrick E. .
SCIENTIFIC REPORTS, 2014, 4
[25]  
Raether H., 1988, SURFACE PLASMONS SMO, Vvol. 111
[26]   PLASMA LOSSES BY FAST ELECTRONS IN THIN FILMS [J].
RITCHIE, RH .
PHYSICAL REVIEW, 1957, 106 (05) :874-881
[27]  
Schuller JA, 2010, NAT MATER, V9, P193, DOI [10.1038/NMAT2630, 10.1038/nmat2630]
[28]   Strong coupling in hyperbolic metamaterials [J].
Shekhar, Prashant ;
Jacob, Zubin .
PHYSICAL REVIEW B, 2014, 90 (04)
[29]   'Trapped rainbow' storage of light in metamaterials [J].
Tsakmakidis, Kosmas L. ;
Boardman, Allan D. ;
Hess, Ortwin .
NATURE, 2007, 450 (7168) :397-401
[30]  
Yeh P., 1988, WILEY SERIES PURE AP, V95