Cavity polaritons in microcavities containing disordered organic semiconductors

被引:295
作者
Agranovich, VM [1 ]
Litinskaia, M
Lidzey, DG
机构
[1] Russian Acad Sci, Inst Spect, Troitsk 142190, Moscow Obl, Russia
[2] Univ Sheffield, Dept Phys & Astron, Sheffield S3 7RH, S Yorkshire, England
来源
PHYSICAL REVIEW B | 2003年 / 67卷 / 08期
关键词
D O I
10.1103/PhysRevB.67.085311
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Many organic materials (disordered and crystalline as well) have rather broad and dispersionless electronic resonances. The excitations in these materials are localized, and thus for these excitations the wave vector is not a "good" quantum number. We analyze the optical properties of exciton polaritons in a microcavity, which utilize such organic materials as the optically active semiconductor. We show that as a result of strong light-matter coupling two polariton branches appear in the microcavity, which are analogous to the cavity-polariton branches observed in inorganic semiconductor structures. However, in contrast to the case of polaritons in inorganic semiconductors, the lower polariton branch exists only in a certain restricted intervals of wave vector values. We also show that in such materials the majority of the electronic excited states do not strongly couple to the cavity photon, and these states can be regarded as essentially incoherent. Applying this physical picture for the microcavities containing disordered cyanine dye J aggregates, we examine the decay of the upper cavity polaritons accompanied by the emission of an intramolecular phonon. We show that the main contribution to the upper polariton nonradiative decay rate arises from the transition to incoherent states, and the transition is very fast (of the order of 50 fs). From the results of our calculations we discuss the dynamics of excitations in a microcavity containing organic materials.
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页数:10
相关论文
共 19 条
[1]  
AGRANOVI.VM, 1966, JETP LETT-USSR, V3, P223
[2]   Organic and inorganic quantum wells in a microcavity: Frenkel-Wannier-Mott excitons hybridization and energy transformation [J].
Agranovich, V ;
Benisty, H ;
Weisbuch, C .
SOLID STATE COMMUNICATIONS, 1997, 102 (08) :631-636
[3]  
AGRANOVICH VM, 1982, ELECTRONIC EXCITATIO, pCH5
[4]  
DENISOV VN, 1987, PHYS REP, V151, P2
[5]  
FAYR MD, 1983, SPECTROSCOPY EXCITAT, P185
[6]   OPTICAL-PROPERTIES OF DISORDERED MOLECULAR AGGREGATES - A NUMERICAL STUDY [J].
FIDDER, H ;
KNOESTER, J ;
WIERSMA, DA .
JOURNAL OF CHEMICAL PHYSICS, 1991, 95 (11) :7880-7890
[7]   Ultrathin organic films grown by organic molecular beam deposition and related techniques [J].
Forrest, SR .
CHEMICAL REVIEWS, 1997, 97 (06) :1793-1896
[8]   Strong exciton-photon coupling in a low-Q all-metal mirror microcavity [J].
Hobson, PA ;
Barnes, WL ;
Lidzey, DG ;
Gehring, GA ;
Whittaker, DM ;
Skolnick, MS ;
Walker, S .
APPLIED PHYSICS LETTERS, 2002, 81 (19) :3519-3521
[9]   EXCITON BAND-STRUCTURE AND PROPERTIES OF A REAL LINEAR CHAIN IN A MOLECULAR CRYSTAL [J].
HOCHSTRA.RM ;
WHITEMAN, JD .
JOURNAL OF CHEMICAL PHYSICS, 1972, 56 (12) :5945-+
[10]   Nonlinear optics of normal-mode-coupling semiconductor microcavities [J].
Khitrova, G ;
Gibbs, HM ;
Jahnke, F ;
Kira, M ;
Koch, SW .
REVIEWS OF MODERN PHYSICS, 1999, 71 (05) :1591-1639