Title :
Simulation of carrier relaxation in hot carrier solar cells
Author :
Goodnick, Stephen M. ; Limpert, Steven ; Honsberg, Christiana ; Lugli, Paolo
Author_Institution :
Solar Power Lab., Arizona State Univ., Tempe, AZ, USA
Abstract :
Hot carrier solar cells depend critically on the energy relaxation dynamics of photo-generated carriers in an absorber material, where hot carriers are extracted through energy selective contacts. Here we combine ensemble Monte Carlo (EMC) simulation with an energy balance equation approach, to simulate the microscopic carrier relaxation processes and corresponding electron and hole temperatures in semiconductor quantum well (QW) hot carrier solar cell structures, both under transient and steady state illumination. We include nonequilibrium optical phonons, in which a detailed balance of emission and absorption events is used to simulate the phonon population in time, with the anharmonic decay of the optical phonon population to acoustic phonons described using a phenomenological phonon lifetime. Simulation of femtosecond laser excitation in GaAs QWs show reduced cooling, depending on the optical phonon lifetime and excitation intensity. Steady state simulation under AM0 solar illumination shows a build-up of hot phonons over long times depending on the phonon lifetime, although they are not readily re-absorbed due to momentum and energy conservation considerations.
Keywords :
III-V semiconductors; Monte Carlo methods; gallium arsenide; hot carriers; phonons; semiconductor quantum wells; solar cells; GaAs; acoustic phonons; anharmonic decay; energy balance equation; energy conservation; energy relaxation dynamics; energy selective contacts; ensemble Monte Carlo simulation; femtosecond laser excitation; hole temperatures; hot carrier solar cells; hot phonons; microscopic carrier relaxation processes; momentum; nonequilibrium optical phonons; phonon lifetime; photogenerated carriers; semiconductor quantum well; solar illumination; Energy loss; Lasers; Metals; Optical losses; Optical scattering; Phonons; Photonics; Monte Carlo simulation; hot carrier solar cells; hot phonons;
Conference_Titel :
Photovoltaic Specialists Conference (PVSC), 2012 38th IEEE
Conference_Location :
Austin, TX
Print_ISBN :
978-1-4673-0064-3
DOI :
10.1109/PVSC.2012.6317914