| Literature DB >> 34288156 |
Boya Zhang1,2, Jingjing Liu3,4, Ming Ren1, Chao Wu1,2, Thomas J Moran5, Songshan Zeng3,4, Sonia E Chavez3,4, Zaili Hou3,4, Zongze Li1,2, Anna Marie LaChance3,4, T Richard Jow6, Bryan D Huey5, Yang Cao1,2, Luyi Sun3,4.
Abstract
The organic insulator-metal interface is the most important junction in flexible electronics. The strong band offset of organic insulators over the Fermi level of electrodes should theoretically impart a sufficient impediment for charge injection known as the Schottky barrier. However, defect formation through Anderson localization due to topological disorder in polymers leads to reduced barriers and hence cumbersome devices. A facile nanocoating comprising hundreds of highly oriented organic/inorganic alternating nanolayers is self-coassembled on the surface of polymer films to revive the Schottky barrier. Carrier injection over the enhanced barrier is further shunted by anisotropic 2D conduction. This new interface engineering strategy allows a significant elevation of the operating field for organic insulators by 45% and a 7× improvement in discharge efficiency for Kapton at 150 °C. This superior 2D nanocoating thus provides a defect-tolerant approach for effective reviving of the Schottky barrier, one century after its discovery, broadly applicable for flexible electronics.Entities:
Keywords: 2D nanoassembly coatings; Schottky barrier; carrier injection; interface engineering; polymer dielectrics
Year: 2021 PMID: 34288156 DOI: 10.1002/adma.202101374
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849