DocumentCode :
675308
Title :
Plasmonic solar cells: A bridge between electromagnetics and semiconductor physics
Author :
Sha, Wei E. I. ; Choy, Wallace C. H. ; Weng Cho Chew
Author_Institution :
Shenzhen Inst. of Res. & Innovation, Univ. of Hong Kong, Shenzhen, China
fYear :
2013
fDate :
7-13 July 2013
Firstpage :
54
Lastpage :
54
Abstract :
A multiphysics study carries out on plasmonic organic solar cells (OSCs) by solving Maxwell´s equations and semiconductor (Poisson, drift-diffusion, and continuity) equations simultaneously with unified finite-difference framework. (See Applied Physics Letters, 101, 223302, 2012; and Optics Express, 20, 2572-2580, 2012.) Regarding the Maxwell´s equations, the perfectly matched layer and periodic boundary conditions are imposed at the vertical and lateral directions of OSCs to simulate the infinite air region and metallic grating electrode, respectively. In view of the semiconductor equations, the Scharfetter-Gummel scheme and semi-implicit strategy are adopted respectively in the space and time domains. To model the bulk heterojunction OSCs, the Langevin bimolecular recombination and Onsager-Braun exciton dissociation models are fully taken into account. The exciton generation rate depending on the optical absorption of the organic active material can be obtained by solving the Maxwell´s equations and will be inserted into the semiconductor equations. Through the exciton generation rate, we seamlessly connect the optical with the electrical properties of plasmonic OSCs.
Keywords :
Maxwell equations; finite difference methods; solar cells; time-domain analysis; Langevin bimolecular recombination; Maxwell equations; Onsager-Braun exciton dissociation models; Poisson equations; Scharfetter-Gummel scheme; bulk heterojunction OSC; continuity equations; drift-diffusion; electrical properties; electromagnetics; exciton generation rate; infinite air region; lateral directions; metallic grating electrode; multiphysics study; optical absorption; organic active material; perfectly matched layer conditions; periodic boundary conditions; plasmonic organic solar cells; semi-implicit strategy; semiconductor equations; semiconductor physics; space domains; time domains; unified finite-difference framework; vertical directions; Anodes; Educational institutions; Equations; Excitons; Gratings; Mathematical model; Plasmons;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Radio Science Meeting (Joint with AP-S Symposium), 2013 USNC-URSI
Conference_Location :
Lake Buena Vista, FL
Print_ISBN :
978-1-4799-1128-8
Type :
conf
DOI :
10.1109/USNC-URSI.2013.6715360
Filename :
6715360
Link To Document :
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