Area of research
Materials Chemistry · Mechanical Engineering
Research interest
Research interests include Catalysis, Adsorption, Chemistry, Mesoporous material, Chemical engineering, and Microporous material.
Research on a novel ZSM-5@Al2O3 compound catalyst for the hydrolysis of carbonyl sulfide from blast furnace gas and in situ reaction mechanism
Catalytic oxidation of carbon monoxide at room temperature over N and Cu modified MnO2
Synergistic Cu-Mn bimetallic sites on MCM-41 for high-efficiency H2S capture from blast furnace gas
New insights and reaction mechanisms in the design of catalysts for the synergistic removal of NO and VOCs from coke oven flue gas: Dual regulation of oxidative properties and acidic sites
New insights into improved SO2&H2O resistance over MoCrCeO catalyst by CTAB for medium-low temperatures NH3-SCR: Regulation of surface acid and oxygen species
Probing the catalytic oxidation of styrene on Co3O4 with different morphologies: Promotion by oxygen vacancies
Unveiling alkali metal poisoning of Cr Mn catalyst for selective catalytic reduction of NO with NH3: An experimental and theoretical study
Insight into Low-Temperature Styrene Oxidation over Nano CeO<sub>2</sub> Catalysts: Modulating Ce–O Bond Strength to Construct Oxygen Defect Engineering
Promotion effect of <scp>Co</scp> addition on the activity and <scp>SO<sub>2</sub></scp> tolerance of <scp>CrCe</scp> catalysts for selective catalytic reduction of <scp>NO</scp><sub><i>x</i></sub> with <scp>NH<sub>3</sub></scp> at middle–low temperatures
Promotion effect of Cr addition on the activity and SO2 tolerance of CeOx catalysts for the NH3-SCR at middle-low temperature
Modification of CrCeO<sub><i>x</i></sub> with Mo: improved SO<sub>2</sub> resistance and N<sub>2</sub> selectivity for NH<sub>3</sub>-SCR at medium–low temperatures
Elucidating the facet-dependent reactivity of Cr Mn catalyst for selective catalytic reduction of NO with NH3
Utilization of coal gangue for preparing high‐silica porous materials with excellent ad/desorption performance on <scp>VOCs</scp>
Hierarchical architectures of ZSM-5 with controllable mesoporous and their particular adsorption/desorption performance for VOCs
Synthesis and formation mechanism analysis of meso‐microporous <scp>ZSM</scp>‐5 with controllable mesoporous volume
One‐pot synthesis of meso‐microporous ZSM‐5 and its excellent performance in VOCs adsorption/desorption
Synthesis of Mesoporous ZSM-5 Zeolite and Its Adsorption Properties for VOCs