Ultrathin Ionic Diodes with Electrostatically Heterogeneous Hybrid Interfaces of Nanoporous SiO2 Nanofilms and Polymer Layer‐by‐Layer Multilayers

Author:

Ishizaki‐Betchaku Yuya12ORCID,Kumakura Narumi1,Yamamoto Shunsuke1ORCID,Nagano Shusaku2ORCID,Mitsuishi Masaya1ORCID

Affiliation:

1. Graduate School of Engineering Tohoku University 6‐6‐11 Aramaki Aza Aoba, Aoba‐ku Sendai 980‐8579 Japan

2. Department of Chemistry College of Science Rikkyo University 3‐34‐1 Nishi‐Ikebukuro, Toshima Tokyo 171‐8501 Japan

Abstract

AbstractNanofluidic ionic diodes have attracted much attention due to their unique functions as unidirectional ion transportation ability and promising applications from molecular sensing, and energy harvesting to emerging neuromorphic devices. However, it remains a challenge to fabricate diode‐like nanofluidic systems with ultrathin film thickness <100 nm. Herein the formation of ultrathin ionic diodes from hybrid nanoassemblies of nanoporous (NP) SiO2 nanofilms and polyelectrolyte layer‐by‐layer (LbL) multilayers is described. Ultrathin ionic diodes are prepared by integrating polyelectrolyte multilayers onto photo‐oxidized NP SiO2 nanofilms obtained from silsesquioxane‐containing block copolymer thin films as a template. The obtained ultrathin ionic diodes exhibit ion current rectification (ICR) properties with high ICR factor = ≈20 under low ionic strength and asymmetric pH conditions. It is concluded that this ICR behavior arises from effective ion accumulation and depletion at the interface of NP SiO2 nanofilms and LbL multilayers attributed to high ion selectivity by combining the experimental data and theoretical calculations using finite element methods. These results demonstrate that the hybrid nano assemblies of NP SiO2 nanofilms and polyelectrolyte LbL multilayers have potential applications for (bio)sensing materials and integrated ionic circuits for seamless connection of human‐machine interfaces.

Funder

Toshiaki Ogasawara Memorial Foundation

Japan Science and Technology Corporation

Japan Society for the Promotion of Science London

Publisher

Wiley

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