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Multiple Cases of Efficient Nonfullerene Ternary Organic Solar Cells Enabled by an Effective Morphology Control Method

  • Kui Jiang
  • , Guangye Zhang*
  • , Guofang Yang
  • , Jianquan Zhang
  • , Zhengke Li
  • , Tingxuan Ma
  • , Huawei Hu
  • , Wei Ma
  • , Harald Ade
  • , He Yan*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Ternary organic solar cells (OSCs) have attracted much research attention, as they can maintain the simplicity of the single-junction device architecture while broadening the absorption range of OSCs. However, one main challenge that limits the development of ternary OSCs is the difficulty in controlling the morphology of ternary OSCs. In this paper, an effective approach to control the morphology is presented that leads to multiple cases of efficient nonfullerene ternary OSCs with efficiencies of up to 11.2%. This approach is based on a donor polymer with strong temperature dependent aggregation properties processed from hot solutions without any solvent additives and a pair of small molecular acceptors (SMAs) that have similar surface tensions and thus low propensity to form discrete phases. Such a ternary blend exhibits a simplified bulk-heterojunction morphology that is similar to the morphology of previously reported binary blends. As a result, an almost linear relationship between VOC and film composition is observed for all nonfullerene ternary devices. Meanwhile, by carefully designing a control system with a large interfacial tension, a different phase separation and VOC dependence is demonstrated. This morphology control approach can be applicable to more material systems and accelerates the development of the ternary OSC field.
Original languageEnglish
Article number1701370
Number of pages13
JournalAdvanced Energy Materials
Volume8
Issue number9
Online published18 Dec 2017
DOIs
Publication statusPublished - 26 Mar 2018
Externally publishedYes

Funding

K.J. and G.Z. contributed equally to this work. The work described in this paper was partially supported by the National Basic Research Program of China (973 Program project numbers 2013CB834701 and 2014CB643501), the ShenZhen Technology and Innovation Commission (project number JCYJ20170413173814007), the Hong Kong Research Grants Council (project numbers T23-407/13 N, N_HKUST623/13, 16305915, 16322416, 606012, and 16303917), HK JEBN Limited, HKUST president's office (Project FP201), and the National Science Foundation of China (# 21374090). The authors especially thank the Hong Kong Innovation and Technology Commission for the support through projects ITC-CNERC14SC01 and ITS/083/15.

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

Research Keywords

  • morphology
  • non-fullerene
  • organic solar cells
  • photovoltaics
  • surface tension
  • small molecular acceptors
  • ternary blends
  • OPEN-CIRCUIT VOLTAGE
  • SMALL-MOLECULE
  • DONOR POLYMER
  • 13-PERCENT EFFICIENCY
  • QUANTUM EFFICIENCY
  • CONJUGATED POLYMER
  • ACTIVE LAYER
  • PERFORMANCE
  • ACCEPTOR
  • RECOMBINATION

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