师资队伍
当前位置: 首页 > 学院概况 > 师资队伍 > 教授&研究员 > 正文

徐香兰

发布时间:2025-12-12


姓名: 徐香兰

性别: 女

职称: 教授

学位: 博士研究生

专业:物理化学

电子邮箱:xuxianglan@ncu.edu.cn

研究方向:多相催化及计算化学


教育工作经历

2021.12 至今:南昌大学化学化工学院,教授

2019.09-2020.08: University of California, Riverside, 访问学者,合作导师:Prof. De-en Jiang.

2016.12-2021.11:南昌大学化学化工学院,副教授

2010.07-2016.11:南昌大学化学学院,讲师

2005.09-2010.07: 福州大学化学化工学院物理化学专业,获理学博士学位;导师:李俊篯教授.

2001.09-2005.07: 井冈山大学,获理学学士学位


教学简介

承担《结构化学》、《物理化学》《物理化学实验》等本科生教学及《量子化学》、《催化进展》、《高等结构化学》研究生教学。主讲的《结构化学》、《物理化学》课程多次获授课质量优秀奖。主持完成省级教学改革课题2项。


科研简介

徐香兰,博士,教授,博士/硕士研究生导师。入选南昌大学赣江“青年学者”,江西省优秀硕士学位论文指导老师。现任中国能源学会能源与环境专业委员会学术委员。长期致力于多相催化材料的理性设计与催化反应机理研究,聚焦金属氧化物负载型金属催化剂(特别是Ru、Pt、Cu基体系)的精准构筑及其在能源小分子转化,涵盖CO2甲烷化、逆水煤气变换(RWGS)、甲醇水蒸气重整制氢等关键反应。主持国家自然科学基金项目4项、国家重点研发计划子课题1项及多项省部级科研项目。荣获江西省自然科学奖二等奖。已在Angew. Chem. Int. Ed., ACS Catal., Chin. J. Catal., J. Catal., J. Phys. Chem. Lett.等国内外权威期刊发表通讯/第一作者论文70余篇,获授权发明专利7项。

招收工业催化、物理化学、应用化学和材料化工研究生,欢迎对催化和理论与计算化学感兴趣的硕士研究生、博士研究生和博士后加入课题组。


科研项目

1. 国家自然科学基金,超亲氧Ni/MnO界面调控及低温CO2甲烷化反应性能和机理,2027-2030,主持,在研。

2. 江西省重点项目基金,超亲氧Ru/MnO界面构筑及其低温CO2甲烷化增效机制, 2026-2029,主持,在研。

3. 国家自然科学基金,金属氧化物固溶体的晶格容量测定:构筑和精准调控金属氧化物催化活性位,2021-2024,主持,结题。

4. 江西省自然科学基金,氧化物载体带隙调控金属载体相互作用:CO2加氢转化新策略,2024-2026,主持,在研。

5. 江西省自然科学基金,CeO2基固溶体晶格容量测定:探究固溶体形成规则及催化反应性阈值效应,2021-2023,主持,结题。


社会兼职

1. 入选江西省科技专家库。

2. 担任《结构化学》《工业催化》期刊青年编委。

3. 担任ACS Catalysis,Journal of Energy Chemistry, Applied Catalysis B, JACS Au, Journal of Materials Chemistry A, The Journal of Physical Chemistry Letters, Chemical Engineering Journal, Environmental Science & Technology等多个期刊审稿人。


获奖情况

荣获江西省自然科学奖二等奖(R2)。


代表性论文及专利

代表性论文

(1) Deng, S.; Wang, X.; Fang, X.; Wang, X.; Xu, X., Oxyphilic Ru-O-Mn2+ Interfaces on Ru/MnO Catalysts: Unprecedented Activity for Low-Temperature CO2 Methanation. Angew. Chem. Int. Ed. 2026, e6087744.

(2) Ma, M.; Zhang, R.; Deng, S.; Zhao, X.; Yang, F.; Fang, X.; Wang, X.; Xu, X., Lattice Mn Doping Enables Dual-Pathway CO2 Methanation on Ru/Cr2O3. ACS Catal. 2026,https://doi.org/10.1021/acscatal.6c04691.

(3) Cheng, B.; Fang, X.; Cao, M.; Wang, X.; Xu, X., Support's electronic structure tuning CO2 methanation on Ru4/TiO2 catalysts: A DFT study. Comput. Theor. Chem. 2026, 1255, 115553.

(4) Zhu, C.; Wang, X.; Deng, S.; Fang, X.; Xu, X.; Wang, X., Pt/Cr2O3 Catalysts for the Reverse Water–Gas Shift Reaction: Unraveling Crucial Roles of Interfacial Synergy and Oxygen Vacancies. Inorg. Chem. 2025, 64 (13), 6731-6741.

(5) Jiang, L.; Yuan, S.; Ma, J.; Deng, S.; Fang, X.; Xu, X.; Meng, H.; Wang, X., Enhancing the Reactivity of Cu/Al2O3 for Methanol Steam Reforming through adding CrOx: Unraveling Reaction Pathways and the Mechanism for Improvement. ACS Catal. 2025, 15, 7138-7152.

(6) Deng, S.; Zhu, C.; Fang, X.; Xu, X.; Wang, X., Lithium Cation Modification Markedly Enhances Ru Dispersion and CO2 Methanation Activity on Ru/SiO2 Catalysts. ACS Catal. 2025, 15, 7666-7676.

(7) Liu, K.; Liao, L.; Li, L.; Nawaz, M. A.; Liao, G.; Xu, X., Direct observation of interface-dependent activity in NiO/CeO2 for effective low-temperature CO oxidation. Surf. Interfaces 2025, 56, 105496.

(8) Lei, M.; Cheng, B.; Liao, Y.; Fang, X.; Xu, X.; Wang, X., Band gap effect of TiO2 on supported Ru single-atom catalysts for CO2 methanation by DFT calculations. Mol. Catal. 2025, 570, 114665.

(9) Wang, X.; Hua, C.; Ma, M.; Fang, X.; Wang, X.; Xu, X., CO2 methanation mechanism on Ru4/Cr2O3 and factors for selective hydrogenation on supported metal catalysts: A DFT study. Surf. Interfaces 2025, 75, 107771.

(10) Liu, Y.; Zhang, Z.; Tian, J.; Liao, Y.; Zhai, J.; Fang, X.; Xu, X.; Wang, X., Tuning CO adsorption states via enhanced metal-support interaction for boosting CO2 methanation activity of Ru/rutile-TiO2. Fuel 2024, 360, 130600.

(11) Liu, K.; Liao, Y.; Wang, P.; Fang, X.; Zhu, J.; Liao, G.; Xu, X., Lattice capacity-dependent activity for CO2 methanation: crafting Ni/CeO2 catalysts with outstanding performance at low temperatures. Nanoscale 2024, 16 (23), 11096-11108.

(12) Deng, S.; Qian, Z.; Zhu, C.; Cheng, B.; Wang, X.; Fang, X.; Xu, X.; Wang, X., Boosting Low-Temperature CO2 Methanation Activity on Ru/Anatase-TiO2 Via Mn Doping: Revealing the Crucial Role of CO2 Dissociation. ACS Catal. 2024, 14 (21), 16508-16521.

(13) Liu, X.; Wang, S.; Liao, Y.; Lei, M.; Fang, X.; Xu, X.; Wang, X., La/Mn molar ratio tuning the activity of La–Mn perovskites for CO and propane oxidation. J. Energy Inst. 2024, 114, 101595.

(14) Wang, S.; Cheng, B.; Fang, X.; Cao, M.; Xu, X.; Wang, X., Electronegativity-dependent Pt anchoring and molecule adsorption for graphene-based supported Pt single atom. J. Mol. Model. 2024, 30 (5), 138.

(15) Xu, X.; Qian, Z.; Wang, D.; Liu, F.; Zhu, J.; Fang, X.; Xu, J.; Wang, X., The universality of like-disperses-like rule for supported simple metal oxide catalysts. Chemical Papers 2024, 78 (13), 7573-7581.

(16) Zhang, Z.; Deng, S.; Fang, X.; Xu, J.; Xu, X.; Wang, X., CrOx-promoted Ru/Al2O3 for CO2 methanation: Formation of surface Cr-doped RuO2 solid solution plays key roles. Fuel 2023, 339, 127414.

(17) Liu, X.; Liu, Y.; Zhao, Y.; Yang, Y.; Xu, J.; Fang, X.; Xu, X.; Wang, X., A-site cations tailoring the activity of LnMnO3 perovskites for CO and propane oxidation. Solid State Sci. 2023, 144, 107298.

(18) Zhang, Z.; Tong, Y.; Fang, X.; Xu, J.; Xu, X.; Wang, X., Interface-dependent activity and selectivity for CO2 hydrogenation on Ni/CeO2 and Ni/Ce0.9Sn0.1Ox. Fuel 2022, 316, 123191.

(19) Liu, Y.; Xu, J.; Jiang, D.-e.; Fang, X.; Wang, X.; Xu, X., Uncovering the Nature of Band Gap Engineering of Adsorption Energy by Elucidating an Adsorbate Bonding Mechanism on Two-Dimensional TiO2(110). J. Phys. Chem. C 2022, 126 (26), 10677-10685.

(20) Xu, X.; Liu, L.; Tong, Y.; Fang, X.; Xu, J.; Jiang, D.-e.; Wang, X., Facile Cr3+-doping strategy dramatically promoting Ru/CeO2 for low-temperature CO2 methanation: unraveling the roles of surface oxygen vacancies and hydroxyl groups. ACS Catal. 2021, 11, 5762-5775.

(21) Feng, X.; Xu, J.; Xu, X.; Zhang, S.; Ma, J.; Fang, X.; Wang, X., Unraveling the principles of lattice disorder degree of Bi2B2O7 (B = Sn, Ti, Zr) compounds on activating gas phase O2 for soot combustion. ACS Catal. 2021, 11, 12112-12122.

(22) Zhang, H.; Zhang, Z.; Liu, Y.; Fang, X.; Xu, J.; Wang, X.; Xu, X., Band-gap engineering: a new tool for tailoring the activity of semiconducting oxide catalysts for CO oxidation. J. Phys. Chem. Lett. 2021, 12, 9188-9196.

(23) Xu, X.; Wang, X.; Jiang, D.-e., Band gap as a novel descriptor for the reactivity of 2D Titanium dioxide and its supported Pt single atom for methane activation. J. Phys. Chem. Lett. 2021, 12, 2484-2488.

(24) Xu, X.; Tong, Y.; Huang, J.; Zhu, J.; Fang, X.; Xu, J.; Wang, X., Insights into CO2 methanation mechanism on cubic ZrO2 supported Ni catalyst via a combination of experiments and DFT calculations. Fuel 2021, 283, 118867.

(25) Xu, X.; Zhang, H.; Tong, Y.; Sun, Y.; Fang, X.; Xu, J.; Wang, X., Tuning Ni3+ quantity of NiO via doping of cations with varied valence states: The key role of Ni3+ on the reactivity. Appl. Surf. Sci. 2021, 550, 149316.


专利

1.徐香兰;张志强;王翔;徐骏伟;方修忠,一种用于二氧化碳甲烷化反应的负载型Ru基催化剂及制备方法,ZL202111230386.1,中国发明专利。

2.徐香兰;邓绍荣;王翔;方修忠,一种低温高活性的负载型Ru基催化剂、制备方法及应用,ZL202511516687.9,中国发明专利。


职位