Area of research
Renewable Energy, Sustainability and the Environment · Catalysis
Research interest
Research topics from publications: Optimized Intermediates Adsorption Configuration on Co‐Doped Fe2P@NiP2 Heterojunction Interface for Enhanced Electrocatalytic Nitrate‐To‐Ammonia Conversion; Synergistic coupling of CO2 and NO3− for efficient electrosynthesis of urea using oxygen vacancy-rich Ru-doped CeO2 nanorods; Interface Synergistic Effect from Hierarchically Porous Cu(OH)2@FCN MOF/CF Nanosheet Arrays Boosting Electrocatalytic Oxygen Evolution. Representative work: Abstract The extraction of ammonia (NH 3 ) through electrocatalytic nitrate reduction reaction (NO 3 − RR) represents a sustainable avenue in NH 3 generation and utilization. However, the catalytic efficiency of the NO 3 − RR is hindered by the sluggish kinetics. This study first theoretically found that phosphide‐based heterostructure can alter the adsorption structure of intermediates in the nitrate‐to‐ammonia process, thereby achieving precise regulation of the energy barrier in the rate‐determining step. Based on theoretical design, a novel Co‐doped Fe 2 P@NiP 2 heterojunction catalyst is successfully synthesized, which deliver a notable NH 3 yield rate of 0.395 mmol h −1 cm −2 at −0.7 V The electrolysis of water is an efficient and environmentally friendly technology for large-scale hydrogen production. However, the oxygen evolution reaction (OER) involves a multi-electron–proton coupling transfer step that limits the efficiency of water splitting. Therefore, there is an urgent need to develop electrocatalysts with expected activity and stability to accelerate the kinetics of the oxygen evolution reaction. In this paper, hierarchically porous Cu(OH)2@(Fe, Co, Ni)MOF/CF nanosheet (denoted as Cu(OH)2@FCN MOF/CF) arrays were successfully prepared by the hydrothermally induced in situ growth of FCN MOF nanosheets using modified Cu(OH)2 nanowires as carriers; herein, the tuned a
Optimized Intermediates Adsorption Configuration on Co‐Doped Fe<sub>2</sub>P@NiP<sub>2</sub> Heterojunction Interface for Enhanced Electrocatalytic Nitrate‐To‐Ammonia Conversion
Synergistic coupling of CO2 and NO3− for efficient electrosynthesis of urea using oxygen vacancy-rich Ru-doped CeO2 nanorods
Interface Synergistic Effect from Hierarchically Porous Cu(OH)2@FCN MOF/CF Nanosheet Arrays Boosting Electrocatalytic Oxygen Evolution