论文著作:
发表学术论文50余篇,代表性论文如下:
[1] Chunyi Li, Guowei Wang*. Dehydrogenation of light alkanes to mono-olefins[J]. Chemical Society Reviews, 2021, 50, 4359-4381. (SCI一区top,IF=54.564)
[2] Huanling Zhang, Kai Zhang, Guowei Wang*, Ning Tang, Xiaolin Zhu, Chunyi Li, Honghong Shan. Propane dehydrogenation over core–shell structured Al2O3@Al via hydrothermal oxidation synthesis[J]. Fuel, 2022, 312: 122756. (SCI一区)
[3] Huanling Zhang, Yixue Jiang, Weiwei Dai, Ning Tang, Xiaolin Zhu, Chunyi Li, Honghong Shan, Guowei Wang*. Catalytic dehydrogenation of propane over unconventional Pb/SiO2 catalysts[J]. Fuel, 2022, 318: 123532. (SCI一区)
[4] Huanling Zhang, Yixue Jiang, Guowei Wang*, Ning Tang, Xiaolin Zhu, Chunyi Li, Honghong Shan. In-depth study on propane dehydrogenation over Al2O3-based unconventional catalysts with different crystal phases[J]. Molecular Catalysis, 2022, 519: 112143. (SCI二区)
[5] Guowei Wang, Ning Tang, Ze Li, Xiaolin Zhu, Huanling Zhang, Shan Zhang, Honghong Shan. Ethylbenzene dehydrogenation over Fe2O3 promoted TiO2-ZrO2 catalysts and corresponding conceptual fluidized bed process[J]. Journal of the Taiwan Institute of Chemical Engineers, 2021, 120:1-8. (SCI二区)
[6] Guowei Wang, Yixue Jiang, Shan Zhang, Xiaolin Zhu, Honghong Shan. Insight into the Active Co Phase of Co/Al2O3 Catalyst for Ethane Dehydrogenation[J]. Catalysis Letters, 2022, https://doi.org/10.1007/s10562-021-03883-3. (SCI三区)
[7] Guowei Wang, Shan Zhang, Xiaolin Zhu, Chunyi Li. Dehydrogenation versus hydrogenolysis in the reaction of light alkanes over Ni-based catalysts[J]. Journal of Industrial and Engineering Chemistry, 2020, 86,1-12. (SCI二区)
[8] Guowei Wang, Xiaolin Zhu, Chunyi Li. Recent Progress in commercial and novel catalysts for catalytic dehydrogenation of light alkanes[J]. The Chemical Record, 2020, 20(6):604-616. (SCI二区)
[9] Huanling Zhang, Kai Zhang, Guowei Wang*, Shan Zhang, Xiaolin Zhu, Chunyi Li, Honghong Shan. Factors influencing 1,3-butadiene formation for light alkane dehydrogenation[J]. Journal of the Taiwan Institute of Chemical Engineers, 2020, 113:187-197. (SCI二区)
[10] Xiaolin Zhu, Mingxuan Yu, Ming Cheng, Yue Wang, Haina Zhang, Guowei Wang*, Chunyi Li. Energy & Fuels, Conceptual FCC Process with Additional Regenerated Catalyst Circulation Path for Gasoline Reprocessing and Upgrading with Minimum Loss[J]. Energy Fuels, 2020, 34, 1, 235-244. (SCI二区)
[11] 张珊,张焕玲,李春义,王国玮*. 乙烷脱氢催化剂研究进展[J]. 化工进展,2020,39(6):2390-2398.
[12] Qingqing Zhu, Huanling Zhang, Shan Zhang, Guowei Wang*, Xiaolin Zhu, Chunyi Li. Dehydrogenation of Isobutane over a Ni–P/SiO2 Catalyst: Effect of P Addition[J]. Industrial & Engineering Chemistry Research, 2019, 58(19): 7834-7843. (SCI二区)
[13] Qingqing Zhu, Guowei Wang*, Huanling Zhang, Xiaolin Zhu, Chunyi Li. n-Butane dehydrogenation over Ni-Sn/SiO2: Adsorption modes and reaction paths of n-butane and 1-butene[J]. Applied Catalysis A: General, 2018, 566:113-120. (SCI二区)
[14] 李春义,王国玮*. 丙烷和丁烷气固相催化脱氢制烯烃[J]. 中国科学:化学, 2018.2.27, 48(4): 342-361.
[15] Guowei Wang, Huanling Zhang, Qingqing Zhu, Xiaolin Zhu, Xiuyi Li, Hui Wang, Chunyi Li, Honghong Shan.Sn-containing hexagonal mesoporous silica (HMS) for catalytic dehydrogenation of propane: an efficient strategy to enhance stability[J]. Journal of Catalysis, 2017, 351: 90-94.(SCI一区)
[16] Qingqing Zhu, Guowei Wang*, Jianwei Liu, Lushu Su, Chunyi Li. Effect of Sn on isobutane dehydrogenation performance of Ni/SiO2 catalyst: adsorption modes and adsorption energies of isobutane and isobutene [J]. ACS Applied Materials & Interfaces, 2017, 9(36): 30711-30721. (SCI一区)
[17] 张焕玲, 王国玮*, 山红红, 李春义. 载体对负载型NiSn催化剂丙烷脱氢性能的影响[J], 燃料化学学报, 2017, (12): 1529-1536. (EI收录)
[18] Guowei Wang, Huanling Zhang, Haoren Wang, Qingqing Zhu, Chunyi Li, Honghong Shan. The role of metallic Sn species in catalytic dehydrogenation of propane: active component rather than only promoter[J]. Journal of Catalysis, 2016, 344: 606-608. (SCI一区)
[19] Guowei Wang, Haoren Wang, Huanling Zhang, Qingqing Zhu, Chunyi Li, Honghong Shan. Highly selective and stable NiSn/SiO2 catalyst for isobutane dehydrogenation: Effects of Sn addition[J]. Chemcatchem, 2016, 8(19): 3137-3145. (SCI二区)
[20] Guowei Wang, Chunyi Li, Honghong Shan. Catalytic dehydrogenation of isobutane over a Ga2O3/ZnO interface: reaction routes and mechanism[J]. Catalysis Science & Technology, 2016, 6: 3128-3136. (SCI二区)
[21] Guowei Wang, Chunyi Li, Honghong Shan. Highly efficient metal sulfide catalysts for selective dehydrogenation of isobutane to isobutene[J]. ACS Catalysis, 2014, 4: 1139-1143. (SCI一区)
[22] Guowei Wang, Zhe Meng, Jianwei Liu, Chunyi Li, Honghong Shan. Promoting effect of sulfur addition on the catalytic performance of Ni/MgAl2O4 catalysts for isobutane dehydrogenation[J]. ACS Catalysis, 2013, 3(12): 2992-3001. (SCI一区)
[23] Guowei Wang, Chuancheng Gao, Xiaolin Zhu, Yanan Sun, Chunyi Li, Honghong Shan. Isobutane dehydrogenation over metal (Fe, Co, and Ni) oxide and sulfide catalysts: reactivity and reaction mechanism[J]. ChemCatChem, 2014, 6(8): 2305-2314. (SCI二区)
[24] Guowei Wang, Xiaolin Zhu, Jiaoyu Zhang, anan Sun, Chunyi Li, Honghong Shan. Catalytic dehydrogenation of isobutane over Co-based catalysts[J]. RSC Advances, 2014, 4: 57071-57082. (SCI二区)
[25] Guowei Wang, Nannan Sun, Chuancheng Gao, Xiaolin Zhu, Yanan Sun, Chunyi Li, Honghong Shan. Promoting mechanism of sulfur addition in catalytic dehydrogenation of isobutane over Mo/MgAl2O4 catalysts[J]. Applied Catalysis A: General, 2014, 478: 71-80. (SCI二区)
[26] Guowei Wang, Wenlong Wu, Xiaolin Zhu, Yanan Sun, Chunyi Li, Honghong Shan. Effect of calcination temperature on isobutane dehydrogenation over Mo/MgAl2O4 catalysts[J]. Catalysis Communications, 2014, 56: 119-122. (SCI三区)
[27] Guowei Wang, Chunyi Li, Honghong Shan, Wenlong Wu. Research on isobutane dehydrogenation over Mo/MgAl2O4 catalysts and pilot-scale evaluation in a circulating fluidized-bed unit[J]. Industrial & Engineering Chemistry Research, 2012, 52(37): 13297-13304. (SCI二区)