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中国科学院上海高等研究院导师教师师资介绍简介-吕勇武

本站小编 Free考研考试/2021-02-14

id:100
tutorAreaId:6
name:吕勇武
phone:
sex:1
post:
title:副研究员
address:上海市浦东新区海科路100号9A楼301
zipCode:201210
email:lvyw@sari.ac.cn
headImgUrl:/upload/**/20**3397.jpg
resume:吕勇武,男,1985年生,博士,副研究员。2008年本科毕业于北京化工大学, 获材料科学与工程学士学位;2014年博士毕业于美国密西西比州立大学,获工学博士学位;2017年5月在美国密西西比州立大学完成博士后研究,2017年8月进入中国科学院上海高等研究院工作。研究领域为C1催化化学及纳米催化,主要从事CO加氢合成高附加值化学品及清洁燃料的催化研究,重点开展反应网络、构效关系及活性位纳米结构设计,催化剂的现场原位动态表征。作为第一负责人正主持上海市自然科学基金1项,作为子课题负责人主持科技部国家重点研发计划1项,作为项目骨干参与中科院战略性先导科技专项A类1项。2015年获得第24届北美催化会议Richard J. Kokes奖,美国化学协会会员,美国化学工程师协会会员,美国农业与生物工程协会会员;Journal of Materials Chemistry A等19个SCI期刊审稿人,美国化学协会石油研究基金(ACS Petroleum Research Fund)评审人。已在ACS Catalysis、Journal of Catalysis, AIChE Journal等杂志发表SCI文章22篇,参编英文书籍1部,Google Scholar总引用830余次。

yjly:1. CO加氢合成高附加值化学品及清洁燃料的催化研究
2. 催化剂的反应网络、构效关系及活性位纳米结构设计
3. 催化剂的现场原位动态表征(原位红外光谱仪iS50、原位显微拉曼光谱仪DXR2xi、原位X射线衍射谱仪Ultima IV)

jljry:1. 第24届北美催化会议Richard J. Kokes奖(北美催化协会),2015;

cdky:1. 科技部国家重点研发计划, “合成气高效合成醇类化学品关键技术”, 2018YFB**,子课题负责人,2018/05-2021/04。
2. 上海市自然科学基金,“Fe5C2纳米结构的可控设计及催化FTO的纳米效应研究”,18ZR**,项目负责人,2018/06-2021/05。
3. 中科院战略性先导科技专项A类,“煤经合成气直接制浆态床技术研发”,XDA**,项目骨干,2018/04-2023/04。

dblz:1. 文章:
[1] Lu, Yongwu; Zhang, R.; Cao, B.; Tao, F.; Shan, J.; Nguyen, L.; Bao, Z.; Wu, T.; Pote, J. W.; Wang, B.; Yu, F. “Elucidating the Copper–H?gg Iron Carbide Synergistic Interactions for Selective CO Hydrogenation to Higher Alcohols”. ACS Catalysis, 2017, 7, 5500-5512.
[2] Lu, Yongwu; Yan, Q.; Han, J.; Cao, B.; Street, J.; Yu, F. “Fischer–Tropsch Synthesis of Olefin-Rich Liquid Hydrocarbons from Biomass-derived Syngas over Carbon-Encapsulated Iron Carbide/Iron Nanoparticles Catalyst”. Fuel, 2017, 193, 369-384.
[3] Lu, Yongwu; Cao, B.; Yu, F.; Liu, J.; Bao, Z.; Gao, J.“High Selectivity Higher Alcohols Synthesis from Syngas over Three-dimensionally Ordered Macroporous Cu-Fe Catalysts”. ChemCatChem 2014, 6, 473-478.
[4] Lu, Yongwu; Yu, F.; Hu, J.; Liu, J.“Catalytic Conversion of Syngas to Mixed Alcohols over Zn-Mn Promoted Cu-Fe Based Catalyst”. Applied Catalysis A, 2012, 429-430, 48-58.
[5] Lu, Yongwu; Hu, J.; Han, J.; Yu, F.“Synthesis of Gasoline-Range Hydrocarbons from Nitrogen-Rich Syngas over a Mo/HZSM-5 Bi-functional Catalyst”. Journal of the Energy Institute, 2016, 89, 782-792.
[6] Lu, Yongwu; Zhou, P.; Han, J.; Yu, F. “Fischer-Tropsch Synthesis of Liquid Hydrocarbon over mesoporous SBA-15 supported cobalt catalysts”. RSC Advances, 2015, 5, 59702-59803.
[7] Gong, K.; Lin, T.; An, Y.; Wang, X.; Yu, F.; Wu, B.; Li, X.; Li, S.; Lu, Y.; Zhong, L.; Sun, Y.. “Fischer-Tropsch to olefins over CoMn-based catalysts: Effect of preparation methods”. Applied Catalysis A, 2020, DOI: 10.1016/j.apcata.2020.117414
[8] Lin, T.; Gong, K.; Wang, C.; An, Y.; Wang, X.; Qi, X.; Li, S.; Lu, Y.; Zhong, L.; Sun, Y. “Fischer–Tropsch Synthesis to Olefins: Catalytic Performance and Structure Evolution of Co2C-Based Catalysts under a CO2 Environment”. ACS Catalysis, 2019, 9, 9554-9567.
[9] Dai, Y.; Zhao, Y.; Lin, T.; Li, S.; Yu, F.; An, Y.; Wang, X.; Xiao, K.; Sun, F.; Jiang, Z.; Lu, Y.; Wang, H.; Zhong, L.; Sun. Y. “ Particle Size Effects of Cobalt Carbide for Fischer-Tropsch to Olefins”. ACS Catalysis, 2019, 9, 798-809.
[10] Yu, F.; Lin, T.; An, Y.; Li, Z.; Dai, Y.; Wang, X.; Lu, Y.; Wang, H.; Zhong, L.; Sun, Y. “High Selectivity Production of Olefins with Modified ASF Distribution via Syngas Conversion”. Applied Catalysis A, 2018, 563, 146-153.
[11] Fan, Y.; Bao, J.; Shi, L.; Li, S.; Lu, Y.; Liu, H.; Wang, H.; Zhong, L.; Sun, Y. “Photocatalytic Coupling of Methanol and Formaldehyde into Ethylene Glycol with High Atomic Efficiency”. Catalysis Letters, 2018, 148, 2274-2282.
[12] An, Y.; Zhao, Y.; Yu, F.; Lin, T.; Lu, Y.; Li, S.; Li, Z.; Dai, Y.; Wang, X.; Wang, H.; Zhong, L.; Sun, Y. “Morphology Control of Co2C Nanostructures via The Reduction Process for Direct Production of Lower Olefins from Syngas”. Journal of Catalysis, 2018, 366, 289-299.
[13] An, Y.; Lin, T.; Yu, F.; Wang, X.; Lu, Y.; Zhong, L.; Wang, H.; Sun, Y. “ Effect of Reaction Pressures on Structure-Performance of Co2C-Based Catalyst for Syngas Conversion”. Industrial & Engineering Chemistry Research, 2018, 57, 15647-15653.
[14] Yang, M.; Zhang, C., Fan, Y., Lin, T.; Chen, X.; Lu, Y.; Wang, H.; Zhong, L.; Sun, Y. “ZIF-67-derived Co3O4 Micro/nano Composite Structures for Efficient Photocatalytic Degradation”. Materials Letters, 2018, 222, 92-95.
[15] Han, J.; Liang, Y.; Hu, J.; Qin, L.; Street, J.; Lu, Y.; Yu, F. “Modeling Downdraft Biomass Gasification Process by Restricting Chemical Reaction Equilibrium with Aspen Plus. Energy Conversion Management”. Energy Conversion and Management, 2017, 153, 641-648.
[16] Han, J.; Zhang, L.; Lu, Y.; Hu, J.; Cao, B.; Yu, F. “The Effect of Syngas Composition on The Fischer Tropsch Synthesis over Three-dimensionally Ordered Macro-porous Iron Based Catalyst”. Molecular Catalysis, 2017, 440, 175-183.
[17] Bao, Z.; Lu, Y.; Yu, F. “Kinetic Study of Methane Reforming with Carbon Dioxide over NiCeMgAl Bimodal Pore Catalyst”. AIChE Journal, 2017, 63, 2019-2029.
[18] Yan, Q.; Lu, Y.; To, F.; Li, Y.; Yu, F. “Synthesis of Tungsten Carbide Nanoparticles in Biochar Matrix as a Catalyst for Dry Reforming of Methane to Syngas”. Catalysis Science & Technology, 2015, 5, 3270-3280.
[19] Bao, Z.; Lu, Y.; Han, J.; Li, Y.; Yu, F. “Highly Active and Stable Ni-based Bimodal Pore Catalyst for Dry Reforming of Methane”. Applied Catalysis A, 2015, 491, 116-126.
[20] Yan, Q.; Lu, Y.; Wan, C.; Han, J.; Rodriguez, J.; Yin, J.-J.; Yu, F. “Synthesis of Aromatics-rich Gasoline Range Hydrocarbons from Biomass-derived Syngas over a Pd-Promoted Fe/HZSM-5 Catalyst”. Energy Fuels, 2014, 28, 2027-2034.
[21] Hu, J.; Yu, F.; Lu, Y. “Application of Fischer-Tropsch Synthesis in Biomass to Liquid Conversion”. Catalysts, 2012, 2, 303-326.
2. 论著章节
[1] Lu, Yongwu; Yu, F. “Higher Alcohol Synthesis from Biomass-derived Syngas over Heterogeneous Catalysts” in Syngas: Production, Emerging Technologies and Ecological Impacts, Myers, R. Ed.; Nova Science Publishers, 2016. ISBN: 978-1-63484-805-3, Page 37-78. (Invited Book Chapter)



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