4.8 Article

Correlating the Phase Behavior with the Device Performance in Binary Poly-3-hexylthiophene: Nonfullerene Acceptor Blend Using Optical Probes of the Microstructure

期刊

CHEMISTRY OF MATERIALS
卷 32, 期 19, 页码 8294-8305

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemmater.0c02093

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资金

  1. Fonds de Recherche du Quebec-Nature et technologies (FRQNT)
  2. European Cooperation in Science and Technology
  3. Engineering and Physical Science Research Council [EP/P005543/1, EP/R023581/1, EP/P032591/1]
  4. European Research Council [742708]
  5. Helmholtz Foundation
  6. EPSRC [EP/G037515/1, EP/M005143/1, EP/P00928X/1]
  7. Spanish Ministry of Economy, Industry and Competitiveness through the Severo Ocho Program for Centers of Excellence in RD [SEV-2015-0496, PGC2018-095411-B-I00]
  8. European Research Council (ERC) [648901]
  9. KAUST
  10. ECFP7 Project SC2 [610115, EP/N509486/1]
  11. European Research Council (ERC) [742708] Funding Source: European Research Council (ERC)
  12. EPSRC [EP/P00928X/1, EP/P032591/1, EP/P005543/1, EP/R023581/1, EP/M005143/1] Funding Source: UKRI

向作者/读者索取更多资源

The performance of photovoltaic devices based on blends of conjugated polymers with nonfullerene acceptors depends on the phase behavior and microstructure of the binary, which in turn depends on the chemical structures of the molecular components and the blend composition. We investigate the correlation between the molecular structure, composition, phase behavior, and device performance of a model system consisting of semicrystalline poly-3-hexylthiophene (P3HT) as the donor polymer and three nonfullerene acceptors, two of which (O-IDTBR/EH-IDTBR) have a planar core with different side chains and one (O-IDFBR) of which has a twisted core. We combine differential scanning calorimetry with optical measurements including UV-Vis spectroscopy, photoluminescence, spectroscopic ellipsometry, and Raman spectroscopy and photovoltaic device performance measurements, all at varying blend composition. For P3HT:IDTBR blends, the crystallinity of polymer and acceptor is preserved over a wide composition range and the blend displays a eutectic phase behavior, with the optimum solar cell composition lying close to the eutectic composition. For P3HT:IDFBR blends, increasing acceptor content disrupts the polymer crystallinity, and the optimum device composition appears to be limited by polymer connectivity rather than being linked to the eutectic composition. The optical probes allow us to probe both the crystalline and amorphous phases, clearly revealing the compositions at which component mixing disrupts crystallinity.

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