Experimental study of light emission from strongly coupled organic semiconductor microcavities following nonresonant laser excitation

被引:100
作者
Lidzey, DG
Fox, AM
Rahn, MD
Skolnick, MS
Agranovich, VM
Walker, S
机构
[1] Univ Sheffield, Dept Phys & Astron, Sheffield S3 7RH, S Yorkshire, England
[2] Russian Acad Sci, Inst Spect, Troitsk 142190, Moscow Region, Russia
[3] Univ Sheffield, Dept Elect & Elect Engn, Sheffield S1 3JD, S Yorkshire, England
来源
PHYSICAL REVIEW B | 2002年 / 65卷 / 19期
关键词
D O I
10.1103/PhysRevB.65.195312
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We present a study of the photon emission from strongly coupled organic microcavities, following both cw and ultrafast nonresonant excitation. A thin film of molecular J aggregates is used as the active semiconductor material in the cavity. Due to the very large oscillator strength of the organic semiconductor, a Rabi splitting of 80 meV is observed in emission between the upper and lower polariton branches. We find that at all exciton-photon detunings, the emission from the cavity comes mainly from the lower polariton branch. We show that the photon emission rate from the cavity is not significantly different to that from J aggregates outside the cavity, indicating that the overall exciton decay dynamics are not significantly modified by strong coupling. We compare our cw emission measurements with the predictions of a two-level polariton model, in which we allow the transfer of polaritons between the upper and lower polariton branches. It is found that this model provides a very satisfactory description of the observed emission. Our model indicates that at resonance, population transfer between the branches occurs over time scales of approximately 30 fs, and is significantly faster than normal radiative decay of polaritons. We argue that such interbranch transitions might be used in advanced optoelectronic devices, to transfer energy via a cavity photon between different coherently coupled excitonic states.
引用
收藏
页码:1953121 / 19531210
页数:10
相关论文
共 34 条
[1]  
Agranovich V. M., 1983, Spectroscopy and Excitation Dynamics of Condensed Molecular Systems
[2]   Modelling of asymmetric excitons in organic microcavities [J].
Armitage, A ;
Lidzey, D ;
Bradley, DDC ;
Virgili, T ;
Skolnick, MS ;
Walker, S .
SYNTHETIC METALS, 2000, 111 :377-379
[3]   Wavelength-resolved stimulated photon echoes: Direct observation of ultrafast intramolecular vibrational contributions to electronic dephasing [J].
Book, LD ;
Scherer, NF .
JOURNAL OF CHEMICAL PHYSICS, 1999, 111 (03) :792-795
[4]  
DORAN JP, 1996, NATO ASI SERIES E, V324
[5]   Cavity-polariton mediated resonant Raman scattering [J].
Fainstein, A ;
Jusserand, B ;
ThierryMieg, V .
PHYSICAL REVIEW LETTERS, 1997, 78 (08) :1576-1579
[6]   RAMAN-SCATTERING ENHANCEMENT BY OPTICAL CONFINEMENT IN A SEMICONDUCTOR PLANAR MICROCAVITY [J].
FAINSTEIN, A ;
JUSSERAND, B ;
THIERRYMIEG, V .
PHYSICAL REVIEW LETTERS, 1995, 75 (20) :3764-3767
[7]   Spectral properties of resonant-cavity, polyfluorene light-emitting diodes [J].
Fletcher, RB ;
Lidzey, DG ;
Bradley, DDC ;
Bernius, M ;
Walker, S .
APPLIED PHYSICS LETTERS, 2000, 77 (09) :1262-1264
[8]   Tunable polariton absorption of distributed feedback microcavities at room temperature [J].
Fujita, T ;
Sato, Y ;
Kuitani, T ;
Ishihara, T .
PHYSICAL REVIEW B, 1998, 57 (19) :12428-12434
[9]   MEASUREMENT OF CAVITY-POLARITON DISPERSION CURVE FROM ANGLE-RESOLVED PHOTOLUMINESCENCE EXPERIMENTS [J].
HOUDRE, R ;
WEISBUCH, C ;
STANLEY, RP ;
OESTERLE, U ;
PELLANDINI, P ;
ILEGEMS, M .
PHYSICAL REVIEW LETTERS, 1994, 73 (15) :2043-2046
[10]  
Houdre R, 1996, NATO ADV SCI I E-APP, V324, P33