Isotope Exchange Raman Spectroscopy (IERS): A Novel Technique to Probe Physicochemical Processes In Situ

Author:

Stangl Alexander1ORCID,Pla Dolors1ORCID,Pirovano Caroline2,Chaix‐Pluchery Odette1ORCID,Baiutti Federico34ORCID,Chiabrera Francesco3ORCID,Tarancón Albert35ORCID,Jiménez Carmen1ORCID,Mermoux Michel6,Burriel Mónica1ORCID

Affiliation:

1. Univ. Grenoble Alpes CNRS Grenoble‐INP, LMGP Grenoble 38000 France

2. Univ. Lille, CNRS Centrale Lille Univ. Artois UMR 8181 – UCCS – Unité de Catalyse et Chimie du Solide Lille F‐59000 France

3. Catalonia Institute for Energy Research (IREC) Barcelona 08930 Spain

4. Departement of Materials Chemistry National Institute of Chemistry Hajdrihova 19 Ljubljana SI‐1000 Slovenia

5. ICREA 23 Passeig Lluis Companys Barcelona 08010 Spain

6. Univ. Grenoble Alpes Univ. Savoie Mont Blanc CNRS, Grenoble INP, LEPMI Grenoble 38000 France

Abstract

AbstractA novel in situ methodology for the direct study of mass‐transport properties in oxides with spatial and unprecedented time resolution, based on Raman spectroscopy coupled to isothermal isotope exchanges, is developed. Changes in the isotope concentration, resulting in a Raman frequency shift, can be followed in real time, which is not accessible by conventional methods, enabling complementary insights for the study of ion‐transport properties of electrode and electrolyte materials for advanced solid‐state electrochemical devices. The proof of concept and strengths of isotope exchange Raman spectroscopy (IERS) is demonstrated by studying the oxygen isotope back‐exchange in gadolinium‐doped ceria (CGO) thin films. Resulting oxygen self‐diffusion and surface exchange coefficients are compared to conventional time‐of‐flight secondary‐ion mass spectrometry (ToF‐SIMS) characterization and literature values, showing good agreement, while at the same time providing additional insight, challenging established assumptions. IERS captivates through its rapidity, simple setup, non‐destructive nature, cost effectiveness, and versatile fields of application and thus can readily be integrated as new standard tool for in situ and operando characterization in many laboratories worldwide. The applicability of this method is expected to consolidate the understanding of elementary physicochemical processes and impact various emerging fields including solid oxide cells, battery research, and beyond.

Funder

Horizon 2020 Framework Programme

H2020 Marie Skłodowska-Curie Actions

Agence Nationale de la Recherche

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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