Optically-tracked Reversible Single-Atomic-Monolayer Redox in Plasmonic Nanocavities

Controlling redox reactions at the atomic scale is key to enabling next-generation low-power memristive and neuromorphic devices. Ultrathin metallic layers, such as atomic monolayer palladium (Pd), offer tunable redox behavior well suited for switchable components in nanoscale electronics. Here, we present an in-situ plasmonic-electrochemical platform that probes redox processes within sub-nanometer gaps using a nanoparticle-on-mirror (NPoM) geometry. Atomically thin Pd layers are grown by underpotential deposition and their redox is monitored via surface enhanced Raman spectroscopy (SERS), revealing reversible transformations between metallic and dielectric Pd redox states. This confined plasmonic cavity enhances sensitivity to vibrational and electronic changes, allowing non-destructive optical readout of redox switching behaviors. By reducing the active switching volume to the monolayer limit while maintaining precise geometric control, this work establishes a powerful platform for probing redox dynamics at the atomic scale and points toward highly energy-efficient nanoswitches based on redox-active ultrathin materials.

Authors

Publication Details

Journal
Apollo
Published
2026-09-14
DOI
https://doi.org/10.17863/cam.134384
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
Field-Weighted Citation Impact
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article

Optically-tracked Reversible Single-Atomic-Monolayer Redox in Plasmonic Nanocavities

Jeremy J. Baumberg
Apollo
Electrocatalysts for Energy Conversion
article

Optically-tracked Reversible Single-Atomic-Monolayer Redox in Plasmonic Nanocavities

Jeremy J. Baumberg
article en

Abstract

Controlling redox reactions at the atomic scale is key to enabling next-generation low-power memristive and neuromorphic devices. Ultrathin metallic layers, such as atomic monolayer palladium (Pd), offer tunable redox behavior well suited for switchable components in nanoscale electronics. Here, we present an in-situ plasmonic-electrochemical platform that probes redox processes within sub-nanometer gaps using a nanoparticle-on-mirror (NPoM) geometry. Atomically thin Pd layers are grown by underpotential deposition and their redox is monitored via surface enhanced Raman spectroscopy (SERS), revealing reversible transformations between metallic and dielectric Pd redox states. This confined plasmonic cavity enhances sensitivity to vibrational and electronic changes, allowing non-destructive optical readout of redox switching behaviors. By reducing the active switching volume to the monolayer limit while maintaining precise geometric control, this work establishes a powerful platform for probing redox dynamics at the atomic scale and points toward highly energy-efficient nanoswitches based on redox-active ultrathin materials.

Apollo
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Electrocatalysts for Energy Conversion
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Optically-tracked Reversible Single-Atomic-Monolayer Redox in Plasmonic Nanocavities — Jeremy J. Baumberg · Apollo (2026) | TGRS Research Map | TGRS