The spaser as a nanoscale quantum generator and ultrafast amplifier

被引:312
作者
Stockman, Mark I. [1 ,2 ,3 ]
机构
[1] Georgia State Univ, Dept Phys & Astron, Atlanta, GA 30303 USA
[2] Max Planck Inst Quantum Opt, D-85748 Garching, Germany
[3] Univ Munich, D-85748 Garching, Germany
关键词
nanoplasmonics; quantum generator; nanoscale quantum amplifier; bistability; gain medium; saturable absorber; STIMULATED-EMISSION; LASING SPASER; GAIN; METAMATERIALS; ENHANCEMENT; RESONANCES; SCALE;
D O I
10.1088/2040-8978/12/2/024004
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Nanoplasmonics has recently experienced explosive development with many novel ideas and dramatic achievements in both fundamentals and applications. The spaser has been predicted and observed experimentally as an active element-a generator of coherent local fields. Even greater progress will be achieved if the spaser can function as an ultrafast nanoamplifier-an optical counterpart of the MOSFET (metal-oxide-semiconductor field effect transistor). A formidable problem with this is that the spaser has inherent feedback, causing quantum generation of nanolocalized surface plasmons and saturation and consequent elimination of the net gain, making it unsuitable for amplification. We have overcome this inherent problem and shown that the spaser can perform functions of an ultrafast nanoamplifier in two modes: transient and bistable. On the basis of quantum density matrix (optical Bloch) equations we have shown that the spaser amplifies with gain greater than or similar to 50 with a switching time less than or similar to 100 fs (potentially, similar to 10 fs). This prospective spaser technology will further broaden both fundamental and applied horizons of nanoscience, in particular enabling ultrafast microprocessors working at 10-100 THz clock speed. Other prospective applications are in ultrasensing, ultradense and ultrafast information storage, and biomedicine. The spasers are based on metals and, in contrast to semiconductors, are highly resistive to ionizing radiation, high temperatures, microwave radiation, and other adverse environments.
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页数:13
相关论文
共 44 条
[1]   Light Well: A Tunable Free-Electron Light Source on a Chip [J].
Adamo, G. ;
MacDonald, K. F. ;
Fu, Y. H. ;
Wang, C-M. ;
Tsai, D. P. ;
Garcia de Abajo, F. J. ;
Zheludev, N. I. .
PHYSICAL REVIEW LETTERS, 2009, 103 (11)
[2]   Observation of Stimulated Emission of Surface Plasmon Polaritons [J].
Ambati, Muralidhar ;
Nam, Sung Hyun ;
Ulin-Avila, Erick ;
Genov, Dentcho A. ;
Bartal, Guy ;
Zhang, Xiang .
NANO LETTERS, 2008, 8 (11) :3998-4001
[3]   Biosensing with plasmonic nanosensors [J].
Anker, Jeffrey N. ;
Hall, W. Paige ;
Lyandres, Olga ;
Shah, Nilam C. ;
Zhao, Jing ;
Van Duyne, Richard P. .
NATURE MATERIALS, 2008, 7 (06) :442-453
[4]   The promise of plasmonics [J].
Atwater, Harry A. .
SCIENTIFIC AMERICAN, 2007, 296 (04) :56-63
[5]   THEORY OF RESONANCES IN THE ELECTROMAGNETIC SCATTERING BY MACROSCOPIC BODIES [J].
BERGMAN, DJ ;
STROUD, D .
PHYSICAL REVIEW B, 1980, 22 (08) :3527-3539
[6]   Surface plasmon amplification by stimulated emission of radiation: Quantum generation of coherent surface plasmons in nanosystems [J].
Bergman, DJ ;
Stockman, MI .
PHYSICAL REVIEW LETTERS, 2003, 90 (02) :4
[7]  
BERGMAN DJ, 1992, SOLID STATE PHYS, V46, P148
[8]   Heat-assisted magnetic recording by a near-field transducer with efficient optical energy transfer [J].
Challener, W. A. ;
Peng, Chubing ;
Itagi, A. V. ;
Karns, D. ;
Peng, Wei ;
Peng, Yingguo ;
Yang, XiaoMin ;
Zhu, Xiaobin ;
Gokemeijer, N. J. ;
Hsia, Y. -T. ;
Ju, G. ;
Rottmayer, Robert E. ;
Seigler, Michael A. ;
Gage, E. C. .
NATURE PHOTONICS, 2009, 3 (04) :220-224
[9]   Theory for bowtie plasmonic nanolasers [J].
Chang, Shu-Wei ;
Ni, Chi-Yu Adrian ;
Chuang, Shun Lien .
OPTICS EXPRESS, 2008, 16 (14) :10580-10595
[10]   Resonance amplification of left-handed transmission at optical frequencies by stimulated emission of radiation in active metamaterials [J].
Dong, Zheng-Gao ;
Liu, Hui ;
Li, Tao ;
Zhu, Zhi-Hong ;
Wang, Shu-Ming ;
Cao, Jing-Xiao ;
Zhu, Shi-Ning ;
Zhang, X. .
OPTICS EXPRESS, 2008, 16 (25) :20974-20980