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Thermally stable organic bulk heterojunction photovoltaic cells incorporating an amorphous fullerene derivative as an electron acceptor

  • Seul Ong Kim
  • , Dae Sung Chung
  • , Hyojung Cha
  • , Jae Wan Jang
  • , Yun Hi Kim
  • , Jae Wook Kang
  • , Yong Soo Jeong
  • , Chan Eon Park
  • , Soon Ki Kwon

Research output: Contribution to journalArticlepeer-review

26 Scopus citations

Abstract

A highly soluble amorphous fullerene derivative substituted with dihexylfluorene (DHFCBM) was synthesized and used as an electron acceptor material for P3HT-based bulk heterojunction solar cells. By fitting the experimental JV curves with space charge limited current equation, the electron mobility of DHFCBM was determined to be 4×10-4 cm 2/Vs, possibly leading to balanced charge transport with P3HT. From structural and morphological analysis using X-ray diffraction, UVvis absorption, and atomic force microscopy, we found that the amorphous nature of DHFCBM stabilized the nanomorphology of P3HT:DHFCBM blend films under high temperature annealing. By optimizing blend ratios and annealing conditions, P3HT:DHFCBM-based solar cells yielded power conversion efficiencies in excess of 3%. In addition, the fabricated cells maintained their initial performances even after high temperature annealing for long times, as predicted from the stable nanomorphology. We believe that the use of thermally stable amorphous fullerene as an electron acceptor can be a promising strategy for commercialization of organic solar cells.

Original languageEnglish
Pages (from-to)432-439
Number of pages8
JournalSolar Energy Materials and Solar Cells
Volume95
Issue number2
DOIs
StatePublished - Feb 2011

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • Electron acceptor
  • Organic solar cell
  • PCBM
  • Photovoltaics
  • Thermal annealing

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