The effect of carrier mobility in organic solar cells

被引:98
|
作者
Shieh, Ji-Ting [2 ]
Liu, Chiou-Hua [3 ]
Meng, Hsin-Fei [1 ]
Tseng, Shin-Rong [1 ]
Chao, Yu-Chiang [1 ]
Horng, Sheng-Fu [3 ]
机构
[1] Natl Chiao Tung Univ, Inst Phys, Hsinchu 300, Taiwan
[2] Natl Tsing Hua Univ, Inst Photon Technol, Hsinchu 300, Taiwan
[3] Natl Tsing Hua Univ, Inst Elect Engn, Hsinchu 300, Taiwan
关键词
RECOMBINATION;
D O I
10.1063/1.3327210
中图分类号
O59 [应用物理学];
学科分类号
摘要
The microscopic states and performance of organic solar cell are investigated theoretically to explore the effect of the carrier mobility. With Ohmic contacts between the semiconductor and the metal electrodes there are two origins of carriers in the semiconductor: the photocarriers generated by photon absorption and the dark carriers diffused from the electrodes. The power efficiency of the solar cell is limited by the recombination of a carrier with either the photocarrier or a dark carrier. Near the short-circuit condition the photocarrier recombination in the semiconductor bulk decreases as the mobility increases. Near the open-circuit condition the dark carrier recombination increases with the mobility. These two opposite effects balance with one another, resulting in an optimal mobility about 10(-2) cm(2)/V s which gives the highest power conversion efficiency. The balance of the electron and hole mobilities are not necessary to maintain the optimal efficiency also because of the balance of the photocarrier and dark carrier recombination. The efficiency remains about the same as one carrier mobility is fixed at 10(-2) cm(2)/V s while the other one varies from 10(-1) to 10(-3) cm(2)/V s. For solar cell with a Schottky barrier between the semiconductor and the metal electrode there is no dark carrier recombination. The efficiency therefore always increases with the mobility. (C) 2010 American Institute of Physics. [doi: 10.1063/1.3327210]
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Photogenerated Carrier Mobility Significantly Exceeds Injected Carrier Mobility in Organic Solar Cells
    Melianas, Armantas
    Pranculis, Vytenis
    Xia, Yuxin
    Felekidis, Nikolaos
    Inganas, Olle
    Gulbinas, Vidmantas
    Kemerink, Martijn
    ADVANCED ENERGY MATERIALS, 2017, 7 (09)
  • [2] Modelling of Charge Carrier Mobility Effect on Organic Bulk Heterojunction Solar Cells
    Guo, Wenbin
    Shen, Liang
    Liu, Caixia
    Ruan, Shengping
    Chen, Weiyou
    INTEGRATED FERROELECTRICS, 2012, 138 : 38 - 43
  • [3] Optimum charge carrier mobility in organic solar cells
    Mandoc, M. M.
    Koster, L. J. A.
    Blom, P. W. M.
    APPLIED PHYSICS LETTERS, 2007, 90 (13)
  • [4] CHARGE CARRIER MOBILITY DYNAMICS IN ORGANIC SEMICONDUCTORS AND SOLAR CELLS
    Gulbinas, V
    LITHUANIAN JOURNAL OF PHYSICS, 2020, 60 (01): : 1 - 25
  • [5] Influence of charge carrier mobility on the performance of organic solar cells
    Deibel, Carsten
    Wagenpfahl, Alexander
    Dyakonov, Vladimir
    PHYSICA STATUS SOLIDI-RAPID RESEARCH LETTERS, 2008, 2 (04): : 175 - 177
  • [6] Simulation of charge Carrier mobility unbalance in organic solar cells
    Gagliardi, Alessio
    Wang, Shengda
    Albes, Tim
    ORGANIC ELECTRONICS, 2018, 59 : 171 - 176
  • [7] Effect of carrier mobility on performance of perovskite solar cells
    Gu, Yi-Fan
    Du, Hui-Jing
    Li, Nan-Nan
    Yang, Lei
    Zhou, Chun-Yu
    CHINESE PHYSICS B, 2019, 28 (04)
  • [8] Effect of carrier mobility on performance of perovskite solar cells
    顾一帆
    杜会静
    李楠楠
    杨蕾
    周春宇
    Chinese Physics B, 2019, 28 (04) : 419 - 428
  • [9] Simulation study on influence of the carrier mobility on the performances of organic solar cells
    Du, H.-J. (zhjdu@ysu.edu.cn), 1600, Editorial Office of Chinese Optics (34):
  • [10] Impact of Charge Carrier Mobility and Electrode Selectivity on the Performance of Organic Solar Cells
    Spies, Annika
    Reinhardt, Jeneke
    List, Mathias
    Zimmermann, Birger
    Wuerfel, Uli
    ELEMENTARY PROCESSES IN ORGANIC PHOTOVOLTAICS, 2017, 272 : 401 - 418