4.8 Article

Selective Hole and Electron Transport in Efficient Quaternary Blend Organic Solar Cells

期刊

JOULE
卷 4, 期 8, 页码 1790-1805

出版社

CELL PRESS
DOI: 10.1016/j.joule.2020.06.014

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资金

  1. Hong Kong Research Grants Council (HK-RGC) [R6021-18, 16305915, 16322416, 606012, 16303917]
  2. Shenzhen Technology and Innovation Commission [JCYJ20170413173814007, JCYJ20170818113905024]
  3. Hong Kong Innovation and Technology Commission [ITC-CNERC14SC01, ITS/471/18]
  4. HK-RGC [16306117, 16304218, 16306319, AoE/P-02/12]
  5. U.S. Office of Naval Research (ONR) [N000141712204, N000142012155]
  6. Office of Science, Office of Basic Energy Sciences, of the U.S. Department of Energy [DE-AC02-05CH11231]
  7. National Natural Science Foundation of China [51873140, 51820105003]
  8. Collaborative Innovation Centre of Suzhou Nano Science and Technology
  9. U.S. Department of Defense (DOD) [N000142012155] Funding Source: U.S. Department of Defense (DOD)

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Multi-component organic solar cells (OSCs) comprising more than two donor and acceptor materials have attracted significant research attention, as they can offer broader and better absorption, hence increasing solar cell performance. However, the morphology of multi-component OSCs is exceptionally complicated and challenging to control. Here, we develop a highly efficient (near 17.7%) quaternary OSC (q-OSC) using two polymer donors (namely PM6 and PTQ10) along with a fullerene (PC71 BM) and a non-fullerene acceptor (N3). Our quaternary system demonstrates a new type of rivers and streams functional hierarchical (multilength scale) morphology, where small domains of PTQ10 and PC71BM act as separators that spatially separate PM6 and N3, which effectively suppressed charge recombination, enhanced hole transport, and balanced charge transportation, These improvements in the quaternary system contribute to the increased internal quantum efficiency (IQE) and, thus, lead to an excellent J sc and device performance, which surpass their respective binary and ternary OSCs.

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