Alkaline water electrolysis performance of mixed cation metal phosphorous trichalcogenides
Artikel i vetenskaplig tidskrift, 2024

A variety of mixed-cation metal phosphorus trichalcogenides (MnNiP2S6, FeCoP2S6, FeNiP2S6, CoNiP2S6, FeCoNiP2S6, and the high-entropy CrMnFeNiCoZnP2S6) are synthesized using chemical vapor transport and tested for water splitting under alkaline conditions. Among the materials synthesized, FeCoP2S6 demonstrates the most promising performance, acting as a catalyst with an overpotential of 409 mV and 325 mV for the hydrogen evolution reaction and oxygen evolution reaction (OER), respectively. To further enhance its catalytic activity, a combination of liquid-phase exfoliation techniques assisted by microwave and sonication is employed to FeCoP2S6 (exf-FeCoP2S6), thereby increasing the surface area and exposing more active sites. Promising results are obtained for the OER, with exf-FeCoP2S6 displaying an overpotential of 271 mV, a value very closely matching the best performances reported in the literature under alkaline conditions. Long-term stability tests show a stable profile over time, corroborated by the XPS analysis and computer modeling, which confirms minimal degradation of the catalyst.

Hydrogen evolution reaction

Water splitting

Metal phosphorous trisulfides

Band structure

Oxygen evolution reaction

2D materials

Författare

Filipa M. Oliveira

Vysoká škola chemicko-technologická v Praze

Jan Paštika

Vysoká škola chemicko-technologická v Praze

Işıl Ayaz

Vysoká škola chemicko-technologická v Praze

Vlastimil Mazánek

Vysoká škola chemicko-technologická v Praze

Iva Plutnarová

Vysoká škola chemicko-technologická v Praze

Lunjie Zeng

Chalmers, Fysik, Nano- och biofysik

Eva Olsson

Chalmers, Fysik, Nano- och biofysik

Carlos O. Amorim

Centro de Investigacao em Materiais Ceramicos e Compositos

Manuel Melle-Franco

Centro de Investigacao em Materiais Ceramicos e Compositos

Rui Gusmão

Vysoká škola chemicko-technologická v Praze

Zdeněk Sofer

Vysoká škola chemicko-technologická v Praze

Materials Today Energy

24686069 (eISSN)

Vol. 39 101468

Enabling Science and Technology through European Electron Microscopy (ESTEEM3)

Europeiska kommissionen (EU) (EC/H2020/823717), 2019-01-01 -- 2022-12-31.

Ämneskategorier

Materialkemi

Annan kemiteknik

DOI

10.1016/j.mtener.2023.101468

Mer information

Senast uppdaterat

2024-02-05