Statistical thermodynamic foundation for photovoltaic and photothermal conversion. IV. Solar cells with larger-than-unity quantum efficiency revisited

被引:16
作者
Badescu, V
Landsberg, PT
De Vos, A
Desoete, B
机构
[1] State Univ Ghent, Vakgrp Elekt & Informat Syst, B-9000 Ghent, Belgium
[2] Polytech Univ Bucharest, Fac Mech Engn, Candida Oancea Inst Solar Energy, Bucharest 79590, Romania
[3] Univ Southampton, Fac Math Studies, Southampton SO9 5NH, Hants, England
关键词
D O I
10.1063/1.1338522
中图分类号
O59 [应用物理学];
学科分类号
摘要
A detailed balance solar energy conversion model offering a single treatment of both photovoltaic and photothermal conversion is expounded. It includes a heat rejection mechanism. The effect of multiple impact ionizations on the solar cell efficiency is reconsidered by including the constraints dictated by the first law of thermodynamics (which already exist in the model) and it improves of course the solar cell efficiency. However the upper bound efficiencies previously derived are too optimistic as they do not take into consideration the necessary increase in solar cell temperature. The cell efficiency operating under unconcentrated radiation is a few percent lower than in the ideal case (i.e., with perfect cooling). Wider band gap materials are recommended for those applications where the cell cooling is not effective. The best operation of naturally ventilated cells is under unconcentrated or slightly concentrated solar radiation. Increasing the (forced) ventilation rate allows an increase of the optimum concentration ratio. Additional effects such as the radiation reflectance and radiative pair recombination efficiency are also considered. A sort of threshold minimum band gap depending on the last effect is emphasized: materials with band gaps narrower than this threshold are characterized by very low cell efficiency. (C) 2001 American Institute of Physics.
引用
收藏
页码:2482 / 2490
页数:9
相关论文
共 15 条
[1]   Statistical thermodynamic foundation for photovoltaic and photothermal conversion III: Application to hybrid solar converters [J].
Badescu, V ;
Landsberg, PT ;
DeVos, A .
JOURNAL OF APPLIED PHYSICS, 1997, 81 (08) :3692-3699
[2]   STATISTICAL THERMODYNAMICS FOUNDATION FOR PHOTOVOLTAIC AND PHOTOTHERMAL CONVERSION .2. APPLICATION TO PHOTOVOLTAIC CONVERSION [J].
BADESCU, V ;
LANDSBERG, PT .
JOURNAL OF APPLIED PHYSICS, 1995, 78 (04) :2793-2802
[3]   STATISTICAL THERMODYNAMIC FOUNDATION FOR PHOTOVOLTAIC AND PHOTOTHERMAL CONVERSION .1. THEORY [J].
BADESCU, V ;
LANDSBERG, PT .
JOURNAL OF APPLIED PHYSICS, 1995, 78 (04) :2782-2792
[4]   Thermodynamic efficiency limits for semiconductor solar cells with carrier multiplication [J].
Brendel, R ;
Werner, JH ;
Queisser, HJ .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 1996, 41-2 (41-42) :419-425
[5]   On the ideal performance of solar cells with larger-than-unity quantum efficiency [J].
De Vos, A ;
Desoete, B .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 1998, 51 (3-4) :413-424
[6]  
FRAAS L, 1985, CURRENT TOPICS PHOTO, V1, P169
[7]  
HAMAKAWA Y, 1992, ENERGY POLITICS SCHU, P206
[8]   BAND-BAND IMPACT IONIZATION AND SOLAR-CELL EFFICIENCY [J].
LANDSBERG, PT ;
NUSSBAUMER, H ;
WILLEKE, G .
JOURNAL OF APPLIED PHYSICS, 1993, 74 (02) :1451-1452
[9]  
LANDSBERG PT, 1998, P 2 WORLD C PHOT CON, P62
[10]   Auger recombination and impact ionization in heterojunction photovoltaic cells [J].
Liakos, JK ;
Landsberg, PT .
SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 1996, 11 (12) :1895-1900