Dynamic Variation of Rectification Observed in Supramolecular Mixed Mercaptoalkanoic Acid

Author:

Kong Gyu Don1,Jang Jiung1,Choi Suin1,Lim Gayoung1,Kim In Soo23,Ohto Tatsuhiko45ORCID,Maeda Seiya5,Tada Hirokazu5,Yoon Hyo Jae1ORCID

Affiliation:

1. Department of Chemistry Korea University Seoul 02841 South Korea

2. Nanophotonics Research Center Korea Institute of Science and Technology Seoul 02792 South Korea

3. KIST–SKKU Carbon‐Neutral Research Center Sungkyunkwan University (SKKU) Suwon 16419 South Korea

4. Department of Materials Design Innovation Engineering Nagoya University Furo‐cho Chikusa‐ku Aichi 464‐8603 Japan

5. Graduate School of Engineering Science Osaka University 1–3 Machikaneyama Toyonaka Osaka 560‐8531 Japan

Abstract

AbstractFunctionality in molecular electronics relies on inclusion of molecular orbital energy level within a transmission window. This can be achieved by designing the active molecule with accessible energy levels or by widening the window. While many studies have adopted the first approach, the latter is challenging because defects in the active molecular component cause low breakdown voltages. Here, it is shown that control over the packing structure of monolayer via supramolecular mixing transforms an inert molecule into a highly tunable rectifier. Binary mixed monolayer composed of alkanethiolates with and without carboxylic acid head group as a proof of concept is formed via a surface‐exchange reaction. The monolayer withstands high voltages up to |4.5 V| and shows a dynamic rectification–external bias relationship in magnitude and polarity. Sub‐highest occupied molecular orbital (HOMO) levels activated by the widened transmission window account for these observations. This work demonstrates that simple supramolecular mixing can imbue new electrical properties in electro‐inactive organic molecules.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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