Large modulation of carrier transport by grain-boundary molecular packing and microstructure in organic thin films

Jonathan Rivnay, Leslie H. Jimison, John E. Northrup, Michael F. Toney, Rodrigo Noriega, Shaofeng Lu, Tobin J. Marks, Antonio Facchetti, Alberto Salleo*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

416 Scopus citations

Abstract

Solution-processable organic semiconductors are central to developing viable printed electronics, and performance comparable to that of amorphous silicon has been reported for films grown from soluble semiconductors. However, the seemingly desirable formation of large crystalline domains introduces grain boundaries, resulting in substantial device-to-device performance variations. Indeed, for films where the grain-boundary structure is random, a few unfavourable grain boundaries may dominate device performance. Here we isolate the effects of molecular-level structure at grain boundaries by engineering the microstructure of the high-performance n-type perylenediimide semiconductor PDI8-CN 2 and analyse their consequences for charge transport. A combination of advanced X-ray scattering, first-principles computation and transistor characterization applied to PDI8-CN 2 films reveals that grain-boundary orientation modulates carrier mobility by approximately two orders of magnitude. For PDI8-CN 2 we show that the molecular packing motif (that is, herringbone versus slip-stacked) plays a decisive part in grain-boundary-induced transport anisotropy. The results of this study provide important guidelines for designing device-optimized molecular semiconductors.

Original languageEnglish (US)
Pages (from-to)952-958
Number of pages7
JournalNature materials
Volume8
Issue number12
DOIs
StatePublished - Dec 2009

ASJC Scopus subject areas

  • General Chemistry
  • General Materials Science
  • Condensed Matter Physics
  • Mechanics of Materials
  • Mechanical Engineering

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