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Three‐Dimensional Bulk Heterojunction Morphology for Achieving High Internal Quantum Efficiency in Polymer Solar Cells
Authors:Jang Jo  Seok‐In Na  Seok‐Soon Kim  Tae‐Woo Lee  Youngsu Chung  Seok‐Ju Kang  Doojin Vak  Dong‐Yu Kim
Affiliation:1. Heeger Center for Advanced Materials Department of Materials Science and Engineering Gwangju Institute of Science and Technology 1 Oryong‐Dong, Buk‐Gu, Gwangju 500‐712 (Republic of Korea);2. School of Materials Science and Chemical Engineering Kunsan National University Kunsan, Chonbuk 573‐701 (Republic of Korea);3. Department of Materials Science and Engineering Pohang University of Science and Technology San 31, Hyoja‐dong, Nam‐gu, Pohang 790‐784 (Republic of Korea);4. Samsung Advanced Institute of Technology Mt. 14–1, Nongseo‐dong, Giheung‐gu, Yongin‐si, Gyeonggi‐do 446–712 (Republic of Korea);5. Bio21 Institute, Holmes Laboratory, University of Melbourne Building 102 (Level 4), 30 Flemington Road, Parkville, Victoria 3010 (Australia)
Abstract:Here, an investigation of three‐dimensional (3D) morphologies for bulk heterojunction (BHJ) films based on regioregular poly(3‐hexylthiophene) (P3HT) and [6,6]‐phenyl‐C61‐butyric acid methyl ester (PCBM) is reported. Based on the results, it is demonstrated that optimized post‐treatment, such as solvent annealing, forces the PCBM molecules to migrate or diffuse toward the top surface of the BHJ composite films, which induces a new vertical component distribution favorable for enhancing the internal quantum efficiency (ηIQE ) of the devices. To investigate the 3D BHJ morphology, novel time‐of‐flight secondary‐ion mass spectroscopy studies are employed along with conventional methods, such as UV‐vis absorption, X‐ray diffraction, and high‐resolution transmission electron microscopy studies. The ηIQE of the devices are also compared after solvent annealing for different times, which clearly shows the effect of the vertical component distribution on the performance of BHJ polymer solar cells. In addition, the fabrication of high‐performance P3HT:PCBM solar cells using the optimized solvent‐annealing method is reported, and these cells show a mean power‐conversion efficiency of 4.12% under AM 1.5G illumination conditions at an intensity of 100 mW cm?2.
Keywords:heterojunctions  polymeric materials  solar cells  structure–  property relationships
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