A Single-Molecular AND Gate Operated with Two Orthogonal Switching Mechanisms

Na Zhang, Wai Yip Lo, Anex Jose, Zhengxu Cai, Lianwei Li, Luping Yu*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

38 Citations (Scopus)

Abstract

Single-molecular electronics is a potential solution to nanoscale electronic devices. While simple functional single-molecule devices such as diodes, switches, and wires are well studied, complex single-molecular systems with multiple functional units are rarely investigated. Here, a single-molecule AND logic gate is constructed from a proton-switchable edge-on gated pyridinoparacyclophane unit with a light-switchable diarylethene unit. The AND gate can be controlled orthogonally by light and protonation and produce desired electrical output at room temperature. The AND gate shows high conductivity when treated with UV light and in the neutral state, and low conductivity when treated either with visible light or acid. A conductance difference of 7.3 is observed for the switching from the highest conducting state to second-highest conducting state and a conductance ratio of 94 is observed between the most and least conducting states. The orthogonality of the two stimuli is further demonstrated by UV–vis, NMR, and density function theory calculations. This is a demonstration of concept of constructing a complex single-molecule electronic device from two coupled functional units.

Original languageEnglish
Article number1701248
JournalAdvanced Materials
Volume29
Issue number28
DOIs
Publication statusPublished - 26 Jul 2017
Externally publishedYes

Keywords

  • logic gates
  • molecular electronics
  • single-molecule junctions

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