Issue 17, 2023

Controlling the spacing of the linked graphene oxide system with dithiol linkers under confinement

Abstract

2D nanoscale confined systems exhibit behavior that is markedly different from that observed at the macroscale. Confinement can be tuned by controlling the interlayer spacing between confining layers using organic dithiol linkers. Adjusting spacing and selective intercalation have important impacts for catalysis, superconductivity, spin engineering, sodium ion batteries, 2D magnets, optoelectronics, and many other applications. In this study, we report how reaction conditions and organic linkers can be used to create variable, reproducible spacings between graphene oxide to provide confinement systems. We determined the conditions under which the spacing can be variably adjusted by the type of linker used, the concentration of the linker, and the reaction conditions. Employing dithiol linkers of different lengths, such as three (TPDT) and four (QPDT) aromatic rings, we can adjust the spacing between graphene oxide layers under varied reaction conditions. Here, we show that by varying dithiol linker length and using different reaction conditions, we can reproducibly control the spacing between graphene oxide layers from 0.37 nm to over 0.50 nm.

Graphical abstract: Controlling the spacing of the linked graphene oxide system with dithiol linkers under confinement

Supplementary files

Article information

Article type
Paper
Submitted
11 May 2023
Accepted
31 Jul 2023
First published
14 Aug 2023
This article is Open Access
Creative Commons BY license

Nanoscale Adv., 2023,5, 4553-4562

Controlling the spacing of the linked graphene oxide system with dithiol linkers under confinement

N. Sugak, H. Pham, A. Datye, S. Mukhopadhyay, H. Tan, M. Li and L. D. Pfefferle, Nanoscale Adv., 2023, 5, 4553 DOI: 10.1039/D3NA00324H

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