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Time-Resolved Spatial Distributions of Individual Components of Electroactive Films during Potentiodynamic Electrodeposition

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posted on 2025-06-25, 14:15 authored by Rachel M Sapstead, Robert M Dalgliesh, Virginia C Ferreira, Charlotte Beebee, Erik Watkins, Rob HillmanRob Hillman, Karl RyderKarl Ryder, Emma L Smith, Nina-Juliane Steinke
Of the attributes that determine the performance of electroactive film-based devices, the least well quantified and understood is the spatial distribution of the component species. This is critical since it dictates the transport rates of all the mobile species (electrons, counterions, solvent, analyte, and reactant) and the film mechanical properties (as exploited in actuator devices). One of the few techniques able to provide individual species population profiles in situ is specular neutron reflectivity (NR). Historically, this information is obtained at the cost of poor time resolution (hours). Here we show how NR measurements with event mode data acquisition enable both spatial and temporal resolution; the latter can be selected postexperiment and varied during the transient. We profile individual species at “buried” interfaces under dynamic electrochemical conditions during polypyrrole electrodeposition and Cu deposition/dissolution. In the case of polypyrrole, the film is homogeneous throughout growth; there is no evidence of dendrite formation followed by solvent (water) displacement. Correlation of NR-derived film thickness and coulometric assay allows calculation of the solvent volume fraction, ϕS = 0.48. In the case of Cu in a deep eutectic solvent, the complexing nature of the medium results in time-dependent metal speciation: mechanistically, dissolution does not simply follow the deposition pathway in reverse.

History

Author affiliation

College of Science & Engineering Chemistry

Version

  • VoR (Version of Record)

Published in

ACS Physical Chemistry Au

Volume

4

Issue

6

Pagination

615 - 619

Publisher

American Chemical Society (ACS)

issn

2694-2445

eissn

2694-2445

Copyright date

2024

Available date

2025-06-25

Spatial coverage

United States

Language

en

Deposited by

Professor Karl Ryder

Deposit date

2025-05-27

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