Improved Durability of Ti3C2Tz at Potentials above the Reversible Hydrogen Electrode by Tantalum Substitution

Author:

Favelukis Bar1,Chakrabartty Sukanta1,Kumar Vipin23,Kim Se‐Ho45,El‐Zoka Ayman56,Krämer Mathias5,Raabe Dierk5,Gault Baptiste56,Eliaz Noam1,Natan Amir23,Sokol Maxim1,Rosen Brian A.1ORCID

Affiliation:

1. Department of Materials Science and Engineering Tel Aviv University 6997801 Ramat Aviv Israel

2. Department of Physical Electronics School of Electrical Engineering Tel Aviv University 6997801 Ramat Aviv Israel

3. The Sackler Center for Computational Molecular and Materials Science Tel‐Aviv University 6997801 Tel Aviv Israel

4. Department of Materials Science and Engineering Korea University 02841 Seoul Republic of Korea

5. Max‐Planck‐Institut für Eisenforschung Max‐Plank‐Straβe 1 40237 Düsseldorf Germany

6. Department of Materials Science Royal School of Mines Imperial College, London London SW7 2AZ UK

Abstract

AbstractMXenes have gained significant attention, particularly Ti3C2Tz, as materials with favorable properties for energy storage and conversion applications. The overwhelming majority of electrochemical durability studies are based on durability in the hydrogen evolution window, well below the reversible hydrogen electrode where degradation via electrochemical oxidation is less relevant. Consequently, few strategies have been put forward to protect Ti3C2Tz at higher potentials and widen their applicability to electrochemical systems. Here, the electrochemical degradation of pristine Ti3C2Tz and tantalum (Ta)‐substituted (Ti0.95Ta0.05)3C2Tz is reported. X‐ray photoelectron spectroscopy and electron microscopy revealed that pristine and Ta‐doped MXene went through entirely different degradation mechanisms, and that these mechanisms are driven by electrochemical, rather than chemical effects. Density functional theory is used to explain the role of Ta doping with respect to the binding of oxygen and the formation of metal oxide phases. The influence of the degradation mechanism is observed by accelerated stress tests and anode reversal tests on a polymer electrolyte membrane fuel cell. Therefore, the substitution of titanium (Ti) with other oxyphilic metals in Ti3C2Tz may be an effective route to improve the durability of the otherwise fragile MXene phase.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

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

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