Dark and illuminated J(V) characteristics of thin layered bulk heterojunction P3HT:PCBM sandwich solar cells after thermal treatment

被引:0
作者
Lordwell Jhamba
Daniel Wamwangi
Zivayi Chiguvare
机构
[1] University of the Witwatersrand,DST/NRF Centre of Excellence in Strong Materials, Material Physics Research Institute, School of Physics
[2] University of Venda,Department of Physics, School of Mathematical and Natural Sciences
[3] University of Namibia,Department of Physics
来源
Optical and Quantum Electronics | 2020年 / 52卷
关键词
Dedoping; Recombination; Charge injection; P3HT; PCBM;
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摘要
Organic photovoltaic solar cells can offer advantages of being mechanically flexible and durable, large area devices, lightweight, made from a diversity of materials and low-cost fabrication. Their efficiency is, however, still too low for commercial exploitation. Empirical observations reveal that polymer–fullerene (P3HT:PCBM) based solar cell performance depends on thermal annealing processes employed, especially the annealing temperatures and durations. The annealing parameters are known to influence the energetics and kinetics of the blending process or morphology, but the associated physics is not fully understood. In this work, current density–voltage characteristics of P3HT:PCBM bulk heterojunction organic solar cells, thermally annealed at different temperatures, 65–160 °C post fabrication, were investigated under dark and illuminated conditions, and compared to their as-cast counterparts. In certain electrical regimes, as-cast devices showed higher values of current density in comparison to the corresponding annealed devices. Such performance was attributed to air-borne chemical doping of the as-cast semiconductor layer, which creates electrically conductive percolation pathways within the as-cast devices. We propose that annealing of semiconductors must be a two-step process, which first initiates decrease in conductivity, followed by its increase. As-cast devices P3HT–PCBM bulk heterojunction solar cells prepared under atmospheric conditions were observed to have comparatively superior photovoltaic performance in comparison to thermally annealed devices. The efficiency drop in the annealed counterparts is attributed to dedoping due to thermal annealing. An annealing temperature of ~ 140 °C was found to be optimum for power conversion efficiency in the bulk heterojunction, 1:1 by mass, P3HT:PCBM based solar cells.
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  • [1] Al-Ibrahim M(2005)Effects of solvent and annealing on the improved performance of solar cells based on poly(3-hexylthiophene): fullerene Appl. Phys. Lett. 86 201120-1-201120-4
  • [2] Ambacher O(2013)Optimizing the organic solar cell efficiency: role of the active layer thickness Sol. Energy Mater. Sol. Cells. 113 100-105
  • [3] Sensfuss S(2001)Plastic solar cells Adv. Funct. Mater. 11 15-26
  • [4] Gobsch G(2003)Electronic injection and conduction processes for polymer devices J. Polym. Sci. B 41 2622-2629
  • [5] Apaydin DH(1990)Light-emitting diodes based on conjugated polymers Nature 347 539-541
  • [6] Yildiz DE(2007)Influence of thermal annealing on the electrical properties of poly(3-hexylthiophene)-based thin film diodes Naturforsch. Z. 62a 609-619
  • [7] Cirpin A(1997)Device model for single carrier organic diodes J. Appl. Phys. 82 6319-6325
  • [8] Toppare L(2004)High efficiency low operating voltage polymer light-emitting diodes with aluminum cathode Appl. Phys. Lett. 84 3522-3524
  • [9] Brabec CJ(2016)Singlet exciton lifetimes in conjugated polymer films for organic solar cells MDPI Polym. 8 1-12
  • [10] Sariciftci NS(2005)Yang Y (2005) Investigation of annealing effects and film thickness dependence of polymer solar cells based on poly(3-hexylthiophene) J. Appl. Phys. 98 043704-1-043704-5