A review of transition metal boride, carbide, pnictide, and chalcogenide water oxidation electrocatalysts
Transition metal borides, carbides, pnictides, and chalcogenides (X-ides) have emerged as
a class of materials for the oxygen evolution reaction (OER). Because of their high earth …
a class of materials for the oxygen evolution reaction (OER). Because of their high earth …
Critical review, recent updates on zeolitic imidazolate framework‐67 (ZIF‐67) and its derivatives for electrochemical water splitting
Abstract Design and construction of low‐cost electrocatalysts with high catalytic activity and
long‐term stability is a challenging task in the field of catalysis. Metal‐organic frameworks …
long‐term stability is a challenging task in the field of catalysis. Metal‐organic frameworks …
Engineering Metallic Alloy Electrode for Robust and Active Water Electrocatalysis with Large Current Density Exceeding 2000 mA cm−2
The amelioration of brilliantly effective electrocatalysts working at high current density for the
oxygen evolution reaction (OER) is imperative for cost‐efficient electrochemical hydrogen …
oxygen evolution reaction (OER) is imperative for cost‐efficient electrochemical hydrogen …
Highly active ruthenium sites stabilized by modulating electron-feeding for sustainable acidic oxygen-evolution electrocatalysis
Designing acid-stable oxygen evolution reaction (OER) electrocatalysts with low noble-
metal content to facilitate the sluggish kinetics is crucial for sustaining green hydrogen …
metal content to facilitate the sluggish kinetics is crucial for sustaining green hydrogen …
Nitrogen‐rich carbonaceous materials for advanced oxygen electrocatalysis: synthesis, characterization, and activity of nitrogen sites
Nitrogen‐doped carbons are among the fastest‐growing class of materials used for oxygen
electrocatalysis, namely, the oxygen reduction reaction (ORR) and oxygen evolution …
electrocatalysis, namely, the oxygen reduction reaction (ORR) and oxygen evolution …
Three-phase heterojunction NiMo-based nano-needle for water splitting at industrial alkaline condition
Constructing heterojunction is an effective strategy to develop high-performance non-
precious-metal-based catalysts for electrochemical water splitting (WS). Herein, we design …
precious-metal-based catalysts for electrochemical water splitting (WS). Herein, we design …
N-doped graphene-decorated NiCo alloy coupled with mesoporous NiCoMoO nano-sheet heterojunction for enhanced water electrolysis activity at high current …
Develo** highly effective and stable non-noble metal-based bifunctional catalyst working
at high current density is an urgent issue for water electrolysis (WE). Herein, we prepare the …
at high current density is an urgent issue for water electrolysis (WE). Herein, we prepare the …
Designing 3d dual transition metal electrocatalysts for oxygen evolution reaction in alkaline electrolyte: Beyond oxides
Oxygen evolution reaction (OER) plays a vital role in electrochemical water splitting, leading
to a more feasible route for sustainably and eco-friendly producing hydrogen energy. Rather …
to a more feasible route for sustainably and eco-friendly producing hydrogen energy. Rather …
NiCo/NiCo–OH and NiFe/NiFe–OH core shell nanostructures for water splitting electrocatalysis at large currents
A big challenge in practical water splitting is the sluggish reaction kinetics at high current
densities that essentially requires efficient electrocatalysts to lower the overpotentials. While …
densities that essentially requires efficient electrocatalysts to lower the overpotentials. While …
Rosette-like (Ni, Co) Se2@ Nb2CTx MXene heterostructure with abundant Se vacancies for high-performance flexible supercapacitor electrodes
B Shen, X Hu, HT Ren, HK Peng, BC Shiu… - Chemical Engineering …, 2024 - Elsevier
It is common knowledge that battery-type materials have ideal energy storage capacity due
to the Faraday behavior that happens both on the outside and inside, but the slow reaction …
to the Faraday behavior that happens both on the outside and inside, but the slow reaction …