| Literature DB >> 30689240 |
Wu-Ji Sun1, Yong-Yan Zhao1, Jin Zhou1, Xue-Feng Cheng1, Jing-Hui He1, Jian-Mei Lu1.
Abstract
Recently, resistance random access memories (RRAMs) have been studied extensively, because the demand for information storage is increasing. However, it remains challenging to obtain a flexible device because the active materials involved need to be nontoxic, nonpolluting, distortion-tolerable, and biodegradable as well adhesive to diverse flexible substrates. In this paper, tannic acid (TA) and an iron ion (FeIII ) coordination complex were employed as the active layer in a sandwich-like (Al/active layer/substrate) device to achieve memory performance. A nontoxic, biocompatible TA-FeIII coordination complex was synthesized by a one-step self-assembly solution method. The retention time of the TA-FeIII memory performance was up to 15 000 s, the yield up to 53 %. Furthermore, the TA-FeIII coordination complex can form a high-quality film and shows stable ternary memory behavior on various flexible substrates, such as polyethylene terephthalate (PET), polyimide (PI), printer paper, and leaf. The device can be degraded by immersing it in vinegar solution. Our work will broaden the application of organic coordination complexes in flexible memory devices with diverse substrates.Entities:
Keywords: RRAM; biocompatible compounds; flexible substrates; organic electronics; self-assembly; ternary memory
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Year: 2019 PMID: 30689240 DOI: 10.1002/chem.201806420
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236