Theory of non-equilibrium 'hot' carriers in direct band-gap semiconductors under continuous illumination

被引:8
作者
Sarkar, Subhajit [1 ,2 ]
Un, Ieng-Wai [2 ]
Sivan, Yonatan [2 ]
Dubi, Yonatan [1 ,3 ]
机构
[1] Ben Gurion Univ Negev, Dept Chem, Beer Sheva, Israel
[2] Ben Gurion Univ Negev, Sch Elect & Comp Engn, Beer Sheva, Israel
[3] Ben Gurion Univ Negev, Ilse Katz Ctr Nanoscale Sci & Technol, Beer Sheva, Israel
基金
以色列科学基金会;
关键词
CW illuminated semiconductor; steady-state properties of hot carriers; coupled Boltzmann-heat equation; hot carrier photoluminescence; SOLAR-CELLS; ELECTRON-SCATTERING; AUGER RECOMBINATION; RELAXATION; SIMULATION; LASERS; GAAS; PHOTOLUMINESCENCE; PRINCIPLES; PARAMETERS;
D O I
10.1088/1367-2630/ac6688
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The interplay between the illuminated excitation of carriers and subsequent thermalization and recombination leads to the formation of non-equilibrium distributions for the 'hot' carriers and to heating of both electrons, holes and phonons. In spite of the fundamental and practical importance of these processes, there is no theoretical framework which encompasses all of them and provides a clear prediction for the non-equilibrium carrier distributions. Here, a self-consistent theory accounting for the interplay between excitation, thermalization, and recombination in continuously-illuminated semiconductors is presented, enabling the calculation of non-equilibrium carrier distributions. We show that counter-intuitively, distributions deviate more from equilibrium under weak illumination than at high intensities. We mimic two experimental procedures to extract the carrier temperatures and show that they yield different dependence on illumination. Finally, we provide an accurate way to evaluate photoluminescence efficiency, which, unlike conventional models, predicts correctly the experimental results. These results provide a starting point towards examining how non-equilibrium features will affect properties hot-carrier based application.
引用
收藏
页数:22
相关论文
共 91 条
[31]  
Green MA, 2017, NAT MATER, V16, P23, DOI [10.1038/nmat4676, 10.1038/NMAT4676]
[32]   ELECTRON-HOLE RECOMBINATION IN GERMANIUM [J].
HALL, RN .
PHYSICAL REVIEW, 1952, 87 (02) :387-387
[33]   Theory of photoluminescence in semiconductors [J].
Hannewald, K ;
Glutsch, S ;
Bechstedt, F .
PHYSICAL REVIEW B, 2000, 62 (07) :4519-4525
[34]   Nonequilibrium photoluminescence excitation spectroscopy in GaAs: Bottleneck and memory effects [J].
Hannewald, K ;
Glutsch, S ;
Bechstedt, F .
PHYSICAL REVIEW B, 2003, 67 (23)
[35]   Maxwell-Bloch equations for spatially inhomogeneous semiconductor lasers .1. Theoretical formulation [J].
Hess, O ;
Kuhn, T .
PHYSICAL REVIEW A, 1996, 54 (04) :3347-3359
[36]   Experimental demonstration of hot-carrier photo-current in an InGaAs quantum well solar cell [J].
Hirst, L. C. ;
Walters, R. J. ;
Fuehrer, M. F. ;
Ekins-Daukes, N. J. .
APPLIED PHYSICS LETTERS, 2014, 104 (23)
[37]  
Ho W.S. W., 1992, MEMBRANE HDB, P3, DOI [DOI 10.1007/978-1-4615-3548-5_1, 10.1007/978-1-4615-3548-5_1]
[38]   THE MONTE-CARLO METHOD FOR THE SOLUTION OF CHARGE TRANSPORT IN SEMICONDUCTORS WITH APPLICATIONS TO COVALENT MATERIALS [J].
JACOBONI, C ;
REGGIANI, L .
REVIEWS OF MODERN PHYSICS, 1983, 55 (03) :645-705
[39]   Luminescence nanothermometry [J].
Jaque, Daniel ;
Vetrone, Fiorenzo .
NANOSCALE, 2012, 4 (15) :4301-4326
[40]   Transport of hot carriers in plasmonic nanostructures [J].
Jermyn, Adam S. ;
Tagliabue, Giulia ;
Atwater, Harry A. ;
Goddard, William A., III ;
Narang, Prineha ;
Sundararaman, Ravishankar .
PHYSICAL REVIEW MATERIALS, 2019, 3 (07)