| Literature DB >> 29782659 |
Lei Zhang1, Nadiia Pasthukova2, Yifan Yao1, Xiaolan Zhong1, Egon Pavlica2, Gvido Bratina2, Emanuele Orgiu1, Paolo Samorì1.
Abstract
Self-standing nanostructures are of fundamental interest in materials science and nanoscience and are widely used in (opto-)electronic and photonic devices as well as in micro-electromechanical systems. To date, large-area and self-standing nanoelectrode arrays assembled on flexible substrates have not been reported. Here the fabrication of a hollow nanomesh scaffold on glass and plastic substrates with a large surface area over 1 mm2 and ultralow leakage current density (≈1-10 pA mm-2 @ 2 V) across the empty scaffold is demonstrated. Thanks to the continuous sub-micrometer space formed in between the nanomesh and the bottom electrode, highly crystalline and dendritic domains of 6,13-bis(triisopropylsilylethinyl)pentacene growing within the hollow cavity can be observed. The high degree of order at the supramolecular level leads to efficient charge and exciton transport; the photovoltaic detector supported on flexible polyethylene terephthalate substrates exhibits an ultrafast photoresponse time as short as 8 ns and a signal-to-noise ratio approaching 105 . Such a hollow scaffold holds great potential as a novel device architecture toward flexible (opto-)electronic applications based on self-assembled micro/nanocrystals.Entities:
Keywords: nanofabrication; optoelectronic devices; organic crystalline heterojunctions; π-conjugated materials
Year: 2018 PMID: 29782659 DOI: 10.1002/adma.201801181
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849