Issue 29, 2019

Modulating and probing the dynamic intermolecular interactions in plasmonic molecule-pair junctions

Abstract

Reversible intermolecular interactions play critical roles in nature. However, it is still challenging to monitor the dynamic intermolecular interactions at the single-molecule level in aqueous solution. Here, we studied the dynamic changes of intermolecular interactions at the carboxyl/carboxyl interfaces between a pair of molecules trapped in a plasmonic nanocavity formed between a gold nanoparticle (GNP) and a gold nanoelectrode (GNE). The development of intermolecular interactions, including the appearance of hydrogen bonds (h-bonds), during and after single GNP collision events on the GNE, was monitored by time-resolved surface-enhanced Raman spectroscopy at a tens of milliseconds time resolution. Spectral fingerprints of the carboxyl group corresponding to non-specific intermolecular interactions and h-bonds are identified. Furthermore, we demonstrated that the strength of intermolecular interaction could be mechanically modulated by changing the applied bias at the GNE, which resulted in small and controllable changes in the nanogap distance. Unlike non-specific intermolecular interactions, the intermolecular h-bonds can only be formed stochastically and are more sensitive to the gap distance modulation. This report demonstrates a new approach to modulate and probe intermolecular interactions within nanogaps.

Graphical abstract: Modulating and probing the dynamic intermolecular interactions in plasmonic molecule-pair junctions

Supplementary files

Article information

Article type
Paper
Submitted
11 Apr 2019
Accepted
14 Jun 2019
First published
15 Jun 2019

Phys. Chem. Chem. Phys., 2019,21, 15940-15948

Author version available

Modulating and probing the dynamic intermolecular interactions in plasmonic molecule-pair junctions

T. Ma, J. Guo, S. Chang, X. Wang, J. Zhou, F. Liang and J. He, Phys. Chem. Chem. Phys., 2019, 21, 15940 DOI: 10.1039/C9CP02030F

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