Improved In Situ Characterization of Electrochemical Interfaces Using Metasurface‐Driven Surface‐Enhanced IR Absorption Spectroscopy

Author:

Berger Luca M.1ORCID,Duportal Malo2ORCID,Menezes Leonardo de Souza13ORCID,Cortés Emiliano1ORCID,Maier Stefan A.145ORCID,Tittl Andreas1ORCID,Krischer Katharina2ORCID

Affiliation:

1. Faculty of Physics Ludwig‐Maximilians‐Universität München 80539 München Germany

2. Department of Physics Technical University of Munich 85748 Garching Germany

3. Departamento de Física Universidade Federal de Pernambuco Recife‐PE 50670–901 Brazil

4. School of Physics and Astronomy Monash University Clayton Victoria 3800 Australia

5. Department of Physics Imperial College London London SW7 2AZ UK

Abstract

AbstractElectrocatalysis plays a crucial role in realizing the transition toward a zero‐carbon future, driving research directions from green hydrogen generation to carbon dioxide reduction. Surface‐enhanced infrared absorption spectroscopy (SEIRAS) is a suitable method for investigating electrocatalytic processes because it can monitor with chemical specificity the mechanisms of the reactions. However, it remains difficult to detect many relevant aspects of electrochemical reactions such as short‐lived intermediates. Herein, an integrated nanophotonic‐electrochemical SEIRAS platform is developed and experimentally realized for the in situ investigation of molecular signal traces emerging during electrochemical experiments. A platinum nano‐slot metasurface featuring strongly enhanced electromagnetic near fields is implemented and spectrally targets the weak vibrational mode of the adsorbed carbon monoxide at ≈2033 cm−1. The metasurface‐driven resonances can be tuned over a broad range in the mid‐infrared spectrum and provide high molecular sensitivity. Compared to conventional unstructured platinum films, this nanophotonic‐electrochemical platform delivers a 27‐fold improvement of the experimentally detected characteristic absorption signals, enabling the detection of new species with weak signals, fast conversions, or low surface concentrations. By providing a deeper understanding of catalytic reactions, the nanophotonic‐electrochemical platform is anticipated to open exciting perspectives for electrochemical SEIRAS, surface‐enhanced Raman spectroscopy, and other fields of chemistry such as photoelectrocatalysis.

Funder

Deutsche Forschungsgemeinschaft

Engineering and Physical Sciences Research Council

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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