TY - JOUR
T1 - Oxygen-deficient layered c-MnO 2 nanosheets derived from acid-etched La3Mn2O7 3 Mn 2 O 7 for robust adsorption-catalytic oxidation of toluene
AU - Wang, Yongqiang
AU - Ma, Xiubiao
AU - Cao, Jiawei
AU - Yue, Jingyu
AU - Li, Yunxia
AU - Liu, Qingqing
AU - Liu, Fang
AU - Dong, Pei
AU - Wang, Shaobin
AU - Zhang, Jinqiang
PY - 2025/2/19
Y1 - 2025/2/19
N2 - Manganese dioxide (MnO2) 2 ) stands out as a promising catalyst for toluene degradation yet refining its synthesis for optimal efficiency poses a significant challenge. In this study, we presented an up-bottom synthesis approach for c-MnO2 2 by selectively removing inactive La ions from La3Mn2O7 3 Mn 2 O 7 (LLM) through acid etching, yielding stacked nanosheets with enriched oxygen vacancies. The resulting H2SO4-LLM 2 SO 4-LLM catalyst exhibited efficient synergistic adsorption-catalytic oxidation effects, attributed to its exceptional specific surface area (307.0 m2/g) 2 /g) and abundant acidic sites, achieving almost 90 % removal of 2000 mg/m3 3 toluene (T90) 90 ) at 196 degree celsius and complete oxidation to CO2 2 at 205 degrees C at a space velocity of 18000 mL/(g center dot h), outperforming most state-of-the-art catalysts for toluene removal. The study elucidates the role of lattice oxygen in catalyzing toluene oxidation and reveals the intricate interplay between oxygen adsorption, lattice oxygen mobility, and redox capability, paving the way for the development of robust catalysts for environmental remediation.
AB - Manganese dioxide (MnO2) 2 ) stands out as a promising catalyst for toluene degradation yet refining its synthesis for optimal efficiency poses a significant challenge. In this study, we presented an up-bottom synthesis approach for c-MnO2 2 by selectively removing inactive La ions from La3Mn2O7 3 Mn 2 O 7 (LLM) through acid etching, yielding stacked nanosheets with enriched oxygen vacancies. The resulting H2SO4-LLM 2 SO 4-LLM catalyst exhibited efficient synergistic adsorption-catalytic oxidation effects, attributed to its exceptional specific surface area (307.0 m2/g) 2 /g) and abundant acidic sites, achieving almost 90 % removal of 2000 mg/m3 3 toluene (T90) 90 ) at 196 degree celsius and complete oxidation to CO2 2 at 205 degrees C at a space velocity of 18000 mL/(g center dot h), outperforming most state-of-the-art catalysts for toluene removal. The study elucidates the role of lattice oxygen in catalyzing toluene oxidation and reveals the intricate interplay between oxygen adsorption, lattice oxygen mobility, and redox capability, paving the way for the development of robust catalysts for environmental remediation.
KW - Acid etch
KW - Oxygen vacancies
KW - Toluene oxidation
UR - https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=uwapure5-25&SrcAuth=WosAPI&KeyUT=WOS:001281756600001&DestLinkType=FullRecord&DestApp=WOS_CPL
U2 - 10.1016/j.seppur.2024.128909
DO - 10.1016/j.seppur.2024.128909
M3 - Article
SN - 0950-4214
VL - 354
JO - Separation and Purification Technology
JF - Separation and Purification Technology
IS - Part 3
M1 - 128909
ER -