High-temperature ultrafast polariton parametric amplification in semiconductor microcavities

被引:0
作者
M. Saba
C. Ciuti
J. Bloch
V. Thierry-Mieg
R. André
Le Si Dang
S. Kundermann
A. Mura
G. Bongiovanni
J. L. Staehli
B. Deveaud
机构
[1] Swiss Federal Institute of Technology Lausanne,Physics Department
[2] PH-Ecublens,Dipartimento di Fisica and Istituto Nazionale di Fisica della Materia
[3] Centre National de la Recherche Scientifique,undefined
[4] Laboratoire de Spectrometrie Physique,undefined
[5] Université J. Fourier-Grenoble,undefined
[6] Università degli Studi di Cagliari,undefined
来源
Nature | 2001年 / 414卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Cavity polaritons, the elementary optical excitations of semiconductor microcavities, may be understood as a superposition of excitons and cavity photons1. Owing to their composite nature, these bosonic particles have a distinct optical response, at the same time very fast and highly nonlinear. Very efficient light amplification due to polariton–polariton parametric scattering has recently been reported in semiconductor microcavities at liquid-helium temperatures2,3,4,5,6,7,8,9,10,11. Here we demonstrate polariton parametric amplification up to 120 K in GaAlAs-based microcavities and up to 220 K in CdTe-based microcavities. We show that the cut-off temperature for the amplification is ultimately determined by the binding energy of the exciton. A 5-µm-thick planar microcavity can amplify a weak light pulse more than 5,000 times. The effective gain coefficient of an equivalent homogeneous medium would be 107 cm-1. The subpicosecond duration and high efficiency of the amplification could be exploited for high-repetition all-optical microscopic switches and amplifiers. 105 polaritons occupy the same quantum state during the amplification, realizing a dynamical condensate of strongly interacting bosons which can be studied at high temperature.
引用
收藏
页码:731 / 735
页数:4
相关论文
共 50 条
[31]   Polariton Formalism for Semiconductor Double Microcavities [J].
Luk, Samuel M. H. ;
Lewandowski, P. ;
Kwong, N. H. ;
Schumacher, S. ;
Binder, R. .
ULTRAFAST PHENOMENA AND NANOPHOTONICS XXI, 2017, 10102
[32]   Dark polariton solitons in semiconductor microcavities [J].
Yulin, A. V. ;
Egorov, O. A. ;
Lederer, F. ;
Skryabin, D. V. .
PHYSICAL REVIEW A, 2008, 78 (06)
[33]   Evidence of polariton stimulation in semiconductor microcavities [J].
Boeuf, F ;
André, R ;
Romestain, R ;
Dang, L ;
Péronne, E ;
Lampin, JF ;
Hulin, D ;
Alexandrou, A .
PHYSICA STATUS SOLIDI A-APPLIED RESEARCH, 2001, 183 (01) :29-33
[34]   Temperature dependent cavity-polariton mode splitting in semiconductor microcavities [J].
Pratt, AR ;
Takamori, T ;
Kamijoh, T .
COMPOUND SEMICONDUCTORS 1998, 1999, (162) :67-72
[35]   Influence of exciton-exciton correlations on the polarization characteristics of polariton amplification in semiconductor microcavities [J].
Schumacher, S. ;
Kwong, N. H. ;
Binder, R. .
PHYSICAL REVIEW B, 2007, 76 (24)
[36]   Ultrafast polariton dynamics in strongly coupled zinc porphyrin microcavities at room temperature [J].
Savvidis, P. G. ;
Connolly, L. G. ;
Skolnick, M. S. ;
Lidzey, D. G. ;
Baumberg, J. J. .
PHYSICAL REVIEW B, 2006, 74 (11)
[37]   Observation of Long-Lived Polariton States in Semiconductor Microcavities across the Parametric Threshold [J].
Ballarini, D. ;
Sanvitto, D. ;
Amo, A. ;
Vina, L. ;
Wouters, M. ;
Carusotto, I. ;
Lemaitre, A. ;
Bloch, J. .
PHYSICAL REVIEW LETTERS, 2009, 102 (05)
[38]   Polariton-polariton interactions and stimulated scattering in semiconductor microcavities [J].
Skolnick, MS ;
Stevenson, RM ;
Tartakovskii, AI ;
Butté, R ;
Emam-Ismail, M ;
Whittaker, DM ;
Savvidis, PG ;
Baumberg, JJ ;
Lemaître, A ;
Astratov, VN ;
Roberts, JS .
MATERIALS SCIENCE & ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS, 2002, 19 (1-2) :407-416
[39]   Nonlinear optics of polariton-polariton correlation in semiconductor microcavities [J].
Ciuti, C., 2000, IEEE, Piscataway, NJ, United States
[40]   Quantum kinetics of parametric polariton scattering in microcavities [J].
Staehli, JL ;
Saba, M ;
Kundermann, S ;
Ciuti, C ;
Deveaud, B .
PHYSICA STATUS SOLIDI B-BASIC SOLID STATE PHYSICS, 2002, 234 (01) :183-194