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Late Transition Metal Doped MXenes Showing Superb Bifunctional Electrocatalytic Activities for Water Splitting via Distinctive Mechanistic Pathways

Rohit Anand, Arun S. Nissimagoudar, Muhammad Umer, Miran Ha, Mohammad Zafari, Sohaib Umer, Geunsik Lee, Kwang S. Kim

2021Advanced Energy Materials133 citationsDOI

Abstract

Abstract MXenes have been widely used as substrates of hybrid electrocatalysts for water splitting due to their stability and metallic properties. However, tuning MXenes towards superb hydrogen/oxygen evolution reaction (HER/OER) activity has remained elusive. Using first‐principles calculations along with machine learning (ML) based descriptors, it is shown that late transition metal doping is able to significantly promote HER/OER activities. Both single‐atom adsorption onto a stable hollow site above the outer oxygen layer single‐atom catalyst 1 (SAC1), and single‐atom replacement at a sub‐surface metal layer (SAC2) are considered. An adsorbate evolving mechanism (AEM) is preferred for SAC1, while the increased M‐O bond covalency for SAC2 makes lattice oxygen mechanism (LOM) favored. It is found that a single Ni or Co atom embedded into MXenes provides a suitable number of electrons for optimal AEM and raises the O 2p band towards activated LOM. The stability and superb bifunctional catalytic capability of MXene combinations (Ni‐doped Sc 3 N 2 O 2 and Ni‐doped Nb 3 C 2 O 2 ) towards both HER and OER are demonstrated. The electronic and geometric descriptors used in the ML analysis work universally for classification of high‐performing HER/OER catalysts. This work provides a rational strategy for promoting bifunctional electrocatalytic activities based on low‐cost MXenes metals.

Topics & Concepts

MXenesBifunctionalOxygen evolutionWater splittingMaterials scienceDopingCatalysisTransition metalMetalChemical engineeringNanotechnologyChemical physicsPhysical chemistryChemistryOptoelectronicsElectrochemistryMetallurgyOrganic chemistryEngineeringElectrodePhotocatalysisMXene and MAX Phase MaterialsElectrocatalysts for Energy ConversionAdvanced Photocatalysis Techniques