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Monitoring dynamic electrochemical processes with in situ ptychography.

Authors :
Kourousias, George
Bozzini, Benedetto
Jones, Michael W. M.
Van Riessen, Grant A.
Dal Zilio, Simone
Billè, Fulvio
Kiskinova, Maya
Gianoncelli, Alessandra
Source :
Applied Nanoscience; Apr2018, Vol. 8 Issue 4, p627-636, 10p
Publication Year :
2018

Abstract

The present work reports novel soft X-ray Fresnel CDI ptychography results, demonstrating the potential of this method for dynamic in situ studies. Specifically, in situ ptychography experiments explored the electrochemical fabrication of Co-doped Mn-oxide/polypyrrole nanocomposites for sustainable and cost-effective fuel-cell air-electrodes. Oxygen-reduction catalysts based on Mn-oxides exhibit relatively high activity, but poor durability: doping with Co has been shown to improve both reduction rate and stability. In this study, we examine the chemical state distribution of the catalytically crucial Co dopant to elucidate details of the Co dopant incorporation into the Mn/polymer matrix. The measurements were performed using a custom-made three-electrode thin-layer microcell, developed at the TwinMic beamline of Elettra Synchrotron during a series of experiments that were continued at the SXRI beamline of the Australian Synchrotron. Our time-resolved ptychography-based investigation was carried out in situ after two representative growth steps, controlled by electrochemical bias. In addition to the observation of morphological changes, we retrieved the spectroscopic information, provided by multiple ptychographic energy scans across Co L<subscript>3</subscript>-edge, shedding light on the doping mechanism and demonstrating a general approach for the molecular-level investigation complex multimaterial electrodeposition processes. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
21905509
Volume :
8
Issue :
4
Database :
Complementary Index
Journal :
Applied Nanoscience
Publication Type :
Academic Journal
Accession number :
130796222
Full Text :
https://doi.org/10.1007/s13204-018-0703-2