Charge Carrier Lifetime and Recombination in Bulk Heterojunction Solar Cells

被引:66
作者
Pivrikas, Almantas [1 ]
Neugebauer, Helmut [1 ]
Sariciftci, Niyazi Serdar [1 ]
机构
[1] Johannes Kepler Univ Linz, Linz Inst Organ Solar Cells, A-4040 Linz, Austria
关键词
Bulk heterojunction; carrier lifetime; charge transport; organic photovoltaic (OPV); organic solar cells; recombination;
D O I
10.1109/JSTQE.2010.2044978
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this paper, the main photocurrent density and power conversion efficiency limiting mechanisms in bulk heterojunction solar cells are discussed with the emphasis on recombination processes. Charge extraction by linearly increasing voltage, time of flight, and other methods that allow the carrier lifetime and recombination to be studied experimentally in operating solar cells are discussed. It is shown that non-Langevin recombination is required for high-performance organic photovoltaic devices, which typically have low charge carrier mobility. Long charge carrier lifetime, exceeding carrier transit time through the film, can be achieved when non-Langevin recombination is observed. Langevin-type recombination dominates in most low-efficiency solar cells, whereas non-Langevin recombination is present in high efficient, e. g., annealed poly(3-hexylthiophene)/phenyl-C61-butyric acid methyl ester blend devices. The film nanomorphology plays a crucial role governing the charge transport and the carrier lifetime. Double injection current with non-Langevin carrier recombination is demonstrated in high-efficiency devices, which strongly exceeds the injection current with Langevin recombination, due to the high carrier concentration attainable under non-Langevin recombination. Several different models explaining the non-Langevin recombination in organic solar cells are reviewed. Requirements for charge carrier mobility and recombination to maximize power conversion efficiency in organic photovoltaic devices are outlined.
引用
收藏
页码:1746 / 1758
页数:13
相关论文
共 107 条
[1]  
Forrest S.R., The path to ubiquitous and low-cost organic electronic appliances on plastic, Nature, 428, pp. 911-918, (2004)
[2]  
Organic Electronics, (2006)
[3]  
Organic Field Effect Transistors, (2007)
[4]  
Introduction to Organic Electronic and Optoelectronic Materials and Devices, (2008)
[5]  
Moliton A., Optoelectronics of Molecules and Polymers, (2006)
[6]  
Hadziioannou G., Mallarias G.G., Semiconducting Polymers, (2007)
[7]  
Organic Electronics in Sensors and Biotechnology, (2009)
[8]  
Handbook of Organic Electronics and Photonics, (2008)
[9]  
Hoppe H., Sariciftci N.S., Organic solar cells: An overview, J. Mater. Res., 19, pp. 1924-1945, (2004)
[10]  
Garnier F., Yassar A., Hajlaoui R., Horowitz G., Deloffre F., Servet B., Ries S., Alnot P., Molecular engineering of organic semiconductors: Design of self-assembly properties in conjugated thiophene oligomers, J. Amer. Chem. Soc., 115, pp. 8716-8721, (1993)