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Xianglan Xu

Nanchang University · CN
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Area of research
Materials Chemistry · Catalysis
Research interest
Research interests include Catalysis, Materials science, Pyrochlore, Chemistry, Carbon dioxide reforming, and X-ray photoelectron spectroscopy.
h-index
citations
4,107
works
138
NIH funding
primary concept
email

Recent publications

Lithium Cation Modification Markedly Enhances Ru Dispersion and CO<sub>2</sub> Methanation Activity on Ru/SiO<sub>2</sub> Catalysts
ACS Catalysis 2025cited by 18position: middledoi
Enhancing the Reactivity of Cu/Al<sub>2</sub>O<sub>3</sub> for Methanol Steam Reforming through adding CrO<sub><i>x</i></sub>: Unraveling Reaction Pathways and the Mechanism for Improvement
ACS Catalysis 2025cited by 14position: middledoi
Synergy of oxygen vacancies and Ni0 species to promote the coke-resistance of Ni/Nd2Zr2O7 catalyst for dry reforming of methane
Chemical Engineering Journal 2025cited by 12position: middledoi
The Monolayer Dispersion Threshold Effect of CuO on Methanol Steam Reforming (MSR): Integrating Experimental and DFT Approaches to Design High-Performance Catalysts
Inorganic Chemistry 2025cited by 8position: middledoi
Pt/Cr<sub>2</sub>O<sub>3</sub> Catalysts for the Reverse Water–Gas Shift Reaction: Unraveling Crucial Roles of Interfacial Synergy and Oxygen Vacancies
Inorganic Chemistry 2025cited by 7position: middledoi
Tune CuO/ZnZrOx catalysts with high H2 production rate and low CO selectivity for methanol steam reforming (MSR): exploring the CuO-supports interactions and the lattice capacity effect of ZnO in t-ZrO2
International Journal of Hydrogen Energy 2025cited by 7position: middledoi
Active Cu <sub> <i>x</i> </sub> Co <sub> 1− <i>x</i> </sub> Al <sub>2</sub> O <sub>4</sub> spinel catalysts with potent SO <sub>2</sub> tolerance for toluene combustion: measuring the Cu substitution capacity in the spinel lattice with XRD extrapolation
Inorganic Chemistry Frontiers 2025cited by 2position: middledoi
Monolayer dispersion of RuO2 on SnO2 support: Elucidating the threshold effect on the intrinsic activity for toluene deep oxidation
Surfaces and Interfaces 2025cited by 1position: middledoi
Preparation method investigation and structure identification by XRD and Raman techniques for A <sub>2</sub> B <sub>2</sub> O <sub>7</sub> composite oxides
Journal of the American Ceramic Society 2024cited by 34position: middledoi
Boosting Low-Temperature CO<sub>2</sub> Methanation Activity on Ru/Anatase-TiO<sub>2</sub> Via Mn Doping: Revealing the Crucial Role of CO<sub>2</sub> Dissociation
ACS Catalysis 2024cited by 33position: middledoi
Lattice capacity-dependent activity for CO<sub>2</sub> methanation: crafting Ni/CeO<sub>2</sub> catalysts with outstanding performance at low temperatures
Nanoscale 2024cited by 27position: lastdoi
Tracking the critical roles of Cu+ and Cu0 sites and the optimal Cu+/Cu0 ratio for CH3OH steam reforming (MTSR) to manufacture H2
Chemical Engineering Journal 2024cited by 27position: middledoi
Manufacturing AAl<sub>2</sub>O<sub>4</sub> (A=Cu, Co, Ni, Zn) Spinel Catalysts for Toluene Combustion: Elucidating the A‐site Replacement Effect on the Reactivity
ChemCatChem 2024cited by 21position: middledoi
Comparing BaZrO<sub>3</sub> Perovskite and La<sub>2</sub>Zr<sub>2</sub>O<sub>7</sub> Pyrochlore for Oxidative Coupling of Methane (OCM): The Importance of Basic Sites vs Oxygen Vacancies
The Journal of Physical Chemistry Letters 2024cited by 13position: middledoi
La/Mn molar ratio tuning the activity of La–Mn perovskites for CO and propane oxidation
Journal of the Energy Institute 2024cited by 12position: middledoi
Decoding the Reactivity Enhancement of Ln<sub>2</sub>Ce<sub>2</sub>O<sub>7</sub> Compounds (Ln = Yb, Y, Tb, and Gd) for Soot Combustion: The Remarkable Contribution of Variable Valence A-Sites
Inorganic Chemistry 2024cited by 11position: middledoi
Insights into the exceptional support phase effect on Ag/Sm2Ce2O7: Modulating Ag distribution and Ag-support interaction to construct reactive soot oxidation catalysts
Journal of Catalysis 2024cited by 11position: middledoi
Studying the Structure‐Reactivity Relationship of CuO/CeO<sub>2</sub> for Catalytic Soot Particulate Combustion: On the Monolayer Dispersion Threshold Effect
ChemCatChem 2024cited by 10position: middledoi
Mg bulk and surface modification on Ni/Y2Ti2O7 catalyst for dry reforming of methane
International Journal of Hydrogen Energy 2024cited by 10position: middledoi
Direct observation of interface-dependent activity in NiO/CeO2 for effective low-temperature CO oxidation
Surfaces and Interfaces 2024cited by 10position: lastdoi
Design of non-noble metal A2B2O7 compounds to catalyze soot particulate combustion: Deciphering the inherent factors contributing to the excellent activity with the integration of experiments and DFT calculations
Chemical Engineering Journal 2024cited by 9position: middledoi
Controllably Modulating Oxygen Vacancies on Nonstoichiometric Nd−Ce−O Binary Oxides for Low‐temperature Oxidative Coupling of Methane
European Journal of Inorganic Chemistry 2024cited by 8position: middledoi
Fabrication of porous and highly defective CeO2-based catalysts for soot combustion with the strategy of soft-template addition and matrix doping by multiple rare earth elements
Catalysis Today 2024cited by 8position: middledoi
Doping SnO<sub>2</sub> with metal ions of varying valence states: discerning the importance of active surface oxygen species <i>vs.</i> acid sites for C<sub>3</sub>H<sub>8</sub> and CO oxidation
Physical Chemistry Chemical Physics 2024cited by 8position: middledoi
Novel and active Bi<sub>2</sub>Zr<sub>1.9</sub>M<sub>0.1</sub>O<sub>7</sub> (M = Mn, Fe, Co, Ni) catalysts for soot particle removal: Engineering surface with rich oxygen defects via partial substitution of Zr‐site
EcoEnergy 2024cited by 7position: middledoi
Defect BaSnO3 perovskites for oxidative dehydrogenation of ethane
Fuel 2024cited by 4position: middledoi
Band gap effect of TiO2 on supported Ru single-atom catalysts for CO2 methanation by DFT calculations
Molecular Catalysis 2024cited by 4position: middledoi
Degradation of tetracycline by visible light using Ca<sub>2</sub>Nb<sub>2</sub>O<sub>7</sub> composite oxides with perovskite and pyrochlore sub-crystalline phases
CrystEngComm 2024cited by 1position: middledoi
The universality of like-disperses-like rule for supported simple metal oxide catalysts
Chemical Papers 2024cited by 1position: firstdoi
Ni-Fe/La2O3 bimetallic catalysts for methane dry reforming: Elucidating the role of Fe for improving coke resistance
Fuel 2023cited by 44position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

Xiang Wang · Shandong University119 papers (2012–2025)Xiuzhong Fang · Nanchang University110 papers (2015–2025)Junwei Xu · Wake Forest University75 papers (2018–2025)Wenming Liu · China National Petroleum Corporation (China)37 papers (2013–2019)Honggen Peng · Nanchang University31 papers (2014–2018)Jianjun Liu · Nanchang University17 papers (2014–2025)Jiating Shen · Nanchang University15 papers (2017–2025)Xiaohui Feng · Northwest A&F University13 papers (2017–2023) · 11 papers (2014–2019)Shijing Zhang · Nanchang University11 papers (2020–2024)Rong Xi · Massachusetts Institute of Technology9 papers (2019–2022)Rumeng Ouyang · Nanchang University9 papers (2023–2024)Xusheng Zhong · Nanchang University8 papers (2022–2024)C.N.R. Rao · Nanchang University8 papers (2017–2022)Jiamei Ma · Nanchang University8 papers (2023–2025)Rui Liu · Nanchang University7 papers (2018–2022) · 7 papers (2014–2020)Yaqian Liu · Guangzhou University of Chinese Medicine7 papers (2017–2022)Lianghui Xia · National University of Singapore6 papers (2019–2021)Yunyan Tong · Nanchang University6 papers (2020–2022)
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