Chin.J.Chem.Eng. ›› 2018, Vol. 26 ›› Issue (6): 1278-1284.DOI: 10.1016/j.cjche.2018.03.001
• Catalysis • Previous Articles Next Articles
Wenjuan Yan1, Yuhui Wu1, Xiang Feng1, Chaohe Yang1, Xin Jin1, Jian Shen2
Received:
2017-11-30
Revised:
2018-03-05
Online:
2018-08-03
Published:
2018-06-28
Contact:
Chaohe Yang,E-mail address:yangch@upc.edu.cn;Jian Shen,E-mail address:js_xtuhzy@xtu.edu.cn
Supported by:
Supported by the China Postdoctoral Science Foundation (2017 M612374), the Natural Science Foundation of Shandong Province (ZR2017BB007), the Postdoctoral Research Funding of Shandong Province (201703016), the Qingdao Postdoctoral Research Funding (BY20170210), the Fundamental Research Funding of Qingdao (17-1-1-67-jch, 17-1-1-80-jch), the Fundamental Research Funds for the Central Universities (18CX02145A, 17CX02017A), the New Faculty Start-up Funding from China University of Petroleum (YJ201601058) and the Natural Science Foundation of China (21606254).
Wenjuan Yan1, Yuhui Wu1, Xiang Feng1, Chaohe Yang1, Xin Jin1, Jian Shen2
通讯作者:
Chaohe Yang,E-mail address:yangch@upc.edu.cn;Jian Shen,E-mail address:js_xtuhzy@xtu.edu.cn
基金资助:
Supported by the China Postdoctoral Science Foundation (2017 M612374), the Natural Science Foundation of Shandong Province (ZR2017BB007), the Postdoctoral Research Funding of Shandong Province (201703016), the Qingdao Postdoctoral Research Funding (BY20170210), the Fundamental Research Funding of Qingdao (17-1-1-67-jch, 17-1-1-80-jch), the Fundamental Research Funds for the Central Universities (18CX02145A, 17CX02017A), the New Faculty Start-up Funding from China University of Petroleum (YJ201601058) and the Natural Science Foundation of China (21606254).
Wenjuan Yan, Yuhui Wu, Xiang Feng, Chaohe Yang, Xin Jin, Jian Shen. Selective propylene epoxidation in liquid phase using highly dispersed Nb catalysts incorporated in mesoporous silicates[J]. Chin.J.Chem.Eng., 2018, 26(6): 1278-1284.
Wenjuan Yan, Yuhui Wu, Xiang Feng, Chaohe Yang, Xin Jin, Jian Shen. Selective propylene epoxidation in liquid phase using highly dispersed Nb catalysts incorporated in mesoporous silicates[J]. Chinese Journal of Chemical Engineering, 2018, 26(6): 1278-1284.
Add to citation manager EndNote|Ris|BibTeX
URL: https://cjche.cip.com.cn/EN/10.1016/j.cjche.2018.03.001
[1] S.J. Khatib, S.T. Oyama, Direct oxidation of propylene to propylene oxide with molecular oxygen:A review, Catal. Rev. 57(2015) 306-344.[2] J.C. Bauer, T.J. Toops, Y. Oyola, J.E. Parks Ⅱ, S. Dai, S.H. Overbury, Catalytic activity and thermal stability of au-CuO/SiO2 catalysts for the low temperature oxidation of CO in the presence of propylene and NO, Catal. Today 231(2014) 15-21.[3] S. Chen, B. Zhang, D. Su, W. Huang, Titania morphology-dependent gold-titania interaction, structure, and catalytic performance of gold/titania catalysts, ChemCatChem 7(2015) 3290-3298.[4] X. Feng, X. Duan, H. Cheng, G. Qian, D. Chen, W. Yuan, X. Zhou, Au/TS-1 catalyst prepared by deposition-precipitation method for propene epoxidation with H2/O2:Insights into the effects of slurry aging time and Si/Ti molar ratio, J. Catal. 325(2015) 128-135.[5] X. Feng, X. Duan, J. Yang, G. Qian, X. Zhou, D. Chen, W. Yuan, Au/uncalcined TS-1 catalysts for direct propene epoxidation with H2 and O2:Effects of Si/Ti molar ratio and Au loading, Chem. Eng. J. 278(2015234-239.[6] U.N. Gupta, R.L. Jenkins, N.F. Dummer, D. Bethell, G.J. Hutchings, Epoxidation of propene with graphite AuPd-supported nanoparticles, Catal. Lett. 145(2015) 697-701.[7] M. Du, J. Huang, D. Sun, Q. Li, Propylene epoxidation over biogenic Au/TS-1 catalysts by Cinnamomum camphora extract in the presence of H2 and O2, Appl. Surf. Sci. 366(2016292-298.[8] X. Feng, Y. Liu, Y. Li, C. Yang, Z. Zhang, X. Duan, X. Zhou, D. Chen, Au/TS-1 catalyst for propene epoxidation with H2/O2:A novel strategy to enhance stability by tuning charging sequence, AICHE J. 62(2016) 3963-3972.[9] S. Kanungo, K.S. Keshri, A.J.F. van Hoof, M.F.N. d'Angelo, J.C. Schouten, T.A. Nijhuis, E. J.M. Hensen, B. Chowdhury, Silylation enhances the performance of Au/Ti-SiO2 catalysts in direct epoxidation of propene using H2 and O2, J. Catal. 344(2016) 434-444.[10] J.C. Liu, Y. Tang, C.R. Chang, Y.G. Wang, J. Li, Mechanistic insights into propene epoxidation with O2-H2O mixture on Au7/alpha-Al2O3:A hydroproxyl pathway from ab initio molecular dynamics simulations, ACS Catal. 6(20162525-2535.[11] L.V. Moskaleva, Theoretical mechanistic insights into propylene epoxidation on aubased catalysts:Surface O versus OOH as oxidizing agents, Catal. Today 278(2016) 45-55.[12] D. Panayotov, M. McEntee, S. Burrows, D. Driscoll, W. Tang, M. Neurock, J. Morris, Infrared studies of propene and propene oxide adsorption on nanoparticulate Au/TiO2, Surf. Sci. 652(2016) 172-182.[13] X.Y. Chen, S.L. Chen, A.P. Jia, J.Q. Lu, W.X. Huang, Gas phase propylene epoxidation over au supported on titanosilicates with different Ti chemical environments, Appl. Surf. Sci. 393(2017) 11-22.[14] X. Feng, N. Sheng, Y. Liu, X. Chen, D. Chen, C. Yang, X. Zhou, Simultaneously enhanced stability and selectivity for propene epoxidation with H2 and O2 on au catalysts supported on nano-crystalline mesoporous TS-1, ACS Catal. 7(20172668-2675.[15] S. Kanungo, D.M.P. Ferrandez, F.N. d'Angelo, J.C. Schouten, T.A. Nijhuis, Kinetic study of propene oxide and water formation in hydro-epoxidation of propene on Au/TiSiO2 catalyst, J. Catal. 338(2016284-294.[16] A. Prieto, M. Palomino, U. Diaz, A. Corma, One-pot two-step process for direct propylene oxide production catalyzed by bi-functional Pd(Au)@TS-1 materials, Appl. Catal. A Gen. 523(2016) 73-84.[17] S.B. Shin, D.-W. Lee, D. Chadwick, The effects of impregnation of precious metals on the catalytic activity of titanium silicate (TS-1) in epoxidation of propene using hydrogen peroxide, J. Mol. Catal. A 423(2016) 478-488.[18] P. Eghbali, E. Sahin, M. Masteri-Farahani, Immobilization of a molybdenum-glycine Schiff base complex within the nanocages of zeolite Y with flexible ligand method, J. Porous. Mater. 24(2017) 39-44.[19] E. Kertalli, D.M.P. Ferrandez, J.C. Schouten, T.A. Nijhuis, Direct synthesis of propene oxide from propene, hydrogen and oxygen in a catalytic membrane reactor, Ind. Eng. Chem. Res. 53(2014) 16275-16284.[20] F. Jin, T.-H. Lin, C.-C. Chang, B.-Z. Wan, J.-F. Lee, S. Cheng, Gold supported on Ti incorporated MCM-36 as efficient catalysts in propylene epoxidation with H2 and O2, RSC Adv. 5(2015) 61710-61718.[21] S. Ghosh, S.S. Acharyya, R. Tiwari, B. Sarkar, R.K. Singha, C. Pendem, T. Sasaki, R. Bal, Selective oxidation of propylene to propylene oxide over silver-supported tungsten oxide nanostructure with molecular oxygen, ACS Catal. 4(20142169-2174.[22] Q. Zhang, G. Chai, Y. Guo, W. Zhan, Y. Guo, L. Wang, Y. Wang, G. Lu, Gas-phase epoxidation of propylene by molecular oxygen over Ag-CuCl2/BaCO3 catalyst with low CuCl2 doping:Catalytic performance, deactivation and regeneration, J. Mol. Catal. A 424(2016) 65-76.[23] Q. Zhang, Y. Guo, W. Zhan, Y. Guo, L. Wang, Y. Wang, G. Lu, Gas-phase epoxidation of propylene by molecular oxygen over ag/BaCO3 catalysts:Effect of preparation conditions, Catal. Today 276(20162-10.[24] E.J. Lee, J. Lee, Y.-J. Seo, J.W. Lee, Y. Ro, J. Yi, I.K. Song, Direct epoxidation of propylene to propylene oxide with molecular oxygen over Ag-Mo-W/ZrO2 catalysts, Catal. Commun. 89(2017) 156-160.[25] Q. Zhang, Y. Guo, W. Zhan, Y. Guo, L. Wang, Y. Wang, G. Lu, Gas-phase epoxidation of propylene by molecular oxygen over Ag-Cu-Cl/BaCO3 catalyst:Effects of Cu and Cl loadings, Chin. J. Catal. 38(2017) 65-72.[26] X. Zheng, Y.L. Guo, Y. Guo, Q. Zhang, X.H. Liu, L. Wang, W.C. Zhan, G.Z. Lu, Epoxidation of propylene by molecular oxygen over unsupported AgCux bimetallic catalyst, Rare Metals 34(2015) 477-490.[27] A. Prieto, M. Palomino, U. Diaz, A. Corma, Propylene epoxidation with in situ generated H2O2 in supercritical conditions, Catal. Today 227(2014) 87-95.[28] E. Kertalli, J.C. Schouten, T.A. Nijhuis, Direct synthesis of propylene oxide in the liquid phase under mild conditions, Appl. Catal. A Gen. 524(2016200-205.[29] D. Duzenli, D.O. Atmaca, M.G. Gezer, I. Onal, A density functional theory study of partial oxidation of propylene on Cu2O(001) and CuO(001) surfaces, Appl. Surf. Sci. 355(2015) 660-666.[30] A. Seubsai, M. Kahn, B. Zohour, D. Noon, M. Charoenpanich, S. Senkan, Copper-manganese mixed metal oxide catalysts for the direct epoxidation of propylene by molecular oxygen, Ind. Eng. Chem. Res. 54(20152638-2645.[31] A. Seubsai, D. Noon, T. Chukeaw, B. Zohour, W. Donphai, M. Chareonpanich, S. Senkan, Epoxidation of propylene to propylene oxide with molecular oxygen over Sb2O3-CuO-NaCl/SiO2 catalysts, J. Ind. Eng. Chem. 32(2015292-297.[32] X. Yang, S. Kattel, K. Xiong, K. Mudiyanselage, S. Rykov, S.D. Senanayake, J.A. Rodriguez, P. Liu, D.J. Stacchiola, J.G. Chen, Direct epoxidation of propylene over stabilized Cu+ surface sites on titanium-modified Cu2O, Angew. Chem. Int. Ed. 54(2015) 11946-11951.[33] T. Chukeaw, A. Seubsai, P. Phon-in, K. Charoen, T. Witoon, W. Donphai, P. Parpainainar, M. Chareonpanich, D. Noon, B. Zohour, S. Senkan, Multimetallic catalysts of RuO2-CuO-Cs2O-TiO2/SiO2 for direct gas-phase epoxidation of propylene to propylene oxide, RSC Adv. 6(2016) 56116-56126.[34] P. Phon-in, A. Seubsai, T. Chukeaw, K. Charoen, W. Donphai, P. Prapainainar, M. Chareonpanich, D. Noon, B. Zohour, S. Senkan, Direct epoxidation of propylene to propylene oxide over RuO2-CuO-NaCl-TeO2-MnOx/SiO2 catalysts, Catal. Commun. 86(2016) 143-147.[35] Y.-Y. Song, G.-C. Wang, A DFT study and microkinetic simulation of propylene partial oxidation on CuO (111) and CuO (100) surfaces, J. Phys. Chem. C 120(201627430-27442.[36] Y. Tang, H. Gao, M. Yang, G. Wang, J. Li, H. Zhang, Z. Tao, NiO promoted CuO-NiO/SBA-15 composites as highly active catalysts for epoxidation of olefins, New J. Chem. 40(2016) 8543-8548.[37] A. Seubsai, P. Phon-in, T. Chukeaw, C. Uppala, P. Prapainainar, M. Chareonpanich, B. Zohour, D. Noon, S. Senkan, Direct propylene epoxidation over RuO2-CuO-NaClTeO2-MnOx/SiO2 catalysts:Optimized operating conditions and catalyst characterization, Ind. Eng. Chem. Res. 56(2017) 100-110.[38] S. Kalyoncu, D. Duzenli, I. Onal, A. Seubsai, D. Noon, S. Senkan, Z. Say, E.I. Vovk, E. Ozensoy, NaCl-promoted CuO-RuO2/SiO2 catalysts for propylene epoxidation with O2 at atmospheric pressures:A combinatorial micro-reactor study, Catal. Lett. 145(2015) 596-605.[39] M. Ghanta, B. Subramaniam, H.-J. Lee, D. Busch, Highly selective homogeneous ethylene epoxidation in gas (ethylene)-expanded liquid:Transport and kinetic studies, AIChE J. 59(2013) 180-187.[40] X. Lu, H. Wu, J. Jiang, M. He, P. Wu, Selective synthesis of propylene oxide through liquid-phase epoxidation of propylene with H2O2 over formed Ti-MWW catalyst, J. Catal. 342(2016) 173-183.[41] J. Xu, Y. Wang, W. Feng, Y. Lin, S. Wang, Effect of triethylamine treatment of titanium silicalite-1 on propylene epoxidation, Front. Chem. Sci. Eng. 8(2014) 478-487.[42] W. Song, G. Xiong, H. Long, F. Jin, L. Liu, X. Wang, Effect of treatment with different bases on the catalytic properties, of TS-1/SiO2 extrudates in propylene epoxidation, Microporous Mesoporous Mater. 212(2015) 48-55.[43] Z. Song, X. Feng, Y. Liu, C. Yang, X. Zhou, Advances in manipulation of catalyst structure and relationship of structure performance for direct propene epoxidation with H2 and O2, Prog. Chem. 28(2016) 1762-1773.[44] X. Feng, D. Chen, X.G. Zhou, Thermal stability of TPA template and size-dependent selectivity of uncalcined TS-1 supported Au catalyst for propene epoxidation with H-2 and O-2, RSC Adv. 6(2016) 44050-44056.[45] M. Lin, C. Xia, B. Zhu, H. Li, X. Shu, Green and efficient epoxidation of propylene with hydrogen peroxide (HPPO process) catalyzed by hollow TS-1 zeolite:A 1.0 kt/a pilot-scale study, Chem. Eng. J. 295(2016) 370-375.[46] D.O. Atmaca, D. Duzenli, M.O. Ozbek, I. Onal, A density functional theory study of propylene epoxidation on RuO2(110) surface, Appl. Surf. Sci. 385(2016) 99-105.[47] W. Feng, Y. Wang, G. Wu, Y. Lin, J. Xu, H. Shi, T. Zhang, S. Wang, X. Wu, P. Yao, Liquid phase propylene epoxidation with H2O2 on TS-1/SiO2 catalyst in a fixed-bed reactor:Experiments and deactivation kinetics, J. Chem. Technol. Biotechnol. 90(2015) 1489-1496.[48] L.M. Molina, M.J. Lopez, J.A. Alonso, Ab initio studies of propene epoxidation on oxidized silver surfaces, Phys. Chem. Chem. Phys. 16(201426546-26552.[49] L. Wang, Y. Wang, G. Wu, W. Feng, T. Zhang, R. Yang, X. Jin, H. Shi, S. Wang, Epoxidation of propylene over Titanosilicate-1 in fixed-bed reactor:Experiments and kinetics, Asian J. Chem. 26(2014) 943-950.[50] X.F. Li, C.Z. Wu, H.X. Gao, Q.L. Chen, Conditions of deposition of TiCl4 used in preparing the silylated Ti-HMS and their effect on catalytic epoxidation of propylene, Kinet. Catal. 55(2014) 770-776.[51] V.-H. Nguyen, S.D. Lin, J.C.S. Wu, H. Bai, Influence of co-feeds additive on the photoepoxidation of propylene over V-Ti/MCM-41 photocatalyst, Catal. Today 245(2015) 186-191.[52] M. Sustek, B. Horvath, I. Vavra, M. Gal, E. Dobrocka, M. Hronec, Effects of structures of molybdenum catalysts on selectivity in gas-phase propylene oxidation, Chin. J. Catal. 36(2015) 1900-1909.[53] J. Garcia-Aguilar, I. Miguel-Garcia, J. Juan-Juan, I. Such-Basanez, E. San Fabian, D. Cazorla-Amoros, A. Berenguer-Murcia, One step-synthesis of highly dispersed iron species into silica for propylene epoxidation with dioxygen, J. Catal. 338(2016) 154-167.[54] F. Jin, Y. Wu, S. Liu, T.-H. Lin, J.-F. Lee, S. Cheng, Effect of Ti incorporated MWW supports on Au loading and catalytic performance for direct propylene epoxidation, Catal. Today 264(2016) 98-108.[55] I.A. Tyablikov, L.I. Rodionova, P.D. Sobolev, I.I. Ivanova, Formation of active sites in titanium-containing zeolites with MFI structure in propylene epoxidation with hydrogen peroxide, Pet. Chem. 56(2016267-274.[56] A. Held, J. Kowalska-Ku?, K. Nowińska, K. Góra-Marek, Potassium-modified silicasupported vanadium oxide catalysts applied for propene epoxidation, J. Catal. 347(201721-35.[57] I. Tyablikov, B. Romanovsky, A heterogeneous organocatalyst for olefin epoxidation, Catal. Today 278(2016) 40-44.[58] A. Ramanathan, T. Archipov, R. Maheswari, U. Hanefeld, E. Roduner, R. Glaser, Synthesis, characterization and catalytic properties of the novel manganese-containing amorphous mesoporous material MnTUD-1, J. Phys. Chem. C 112(2008) 7468-7476.[59] A. Ramanathan, R. Maheswari, B. Subramaniam, Facile styrene epoxidation with H2O2 over novel niobium containing cage type mesoporous silicate, Nb-KIT-5, Top. Catal. 58(2015) 314-324.[60] A. Ramanathan, R. Maheswari, P.S. Thapa, B. Subramaniam, Rapid room temperature synthesis of Ce-MCM-48:An active catalyst for trans-stilbene epoxidation with tertbutyl hydroperoxide, in:J.J. BravoSuarez, M.K. Kidder, V. Schwartz (Eds.),Novel Materials for Catalysis and Fuels Processing, ACS Symposium Series, Vol. 1132, 2013, pp. 213-228.[61] A. Ramanathan, H. Zhu, R. Maheswari, B. Subramaniam, Novel zirconium containing cage type silicate (Zr-KIT-5):An efficient Friedel-crafts alkylation catalyst, Chem. Eng. J. 278(2015) 113-121.[62] A. Ramanathan, H.D. Zhu, R. Maheswari, P.S. Thapa, B. Subramaniam, Comparative study of Nb-incorporated cubic mesoporous silicates as epoxidation catalysts, Ind. Eng. Chem. Res. 54(2015) 4236-4242.[63] W. Yan, G. Zhang, H. Yan, Y. Liu, X. Chen, X. Feng, X. Jin, C. Yang, Liquid phase epoxidation of light olefins over W and Nb nanocatalysts, ACS Sustain. Chem. Eng. (2018) https://doi.org/10.1021/acssuschemeng.7b03101.[64] F. Song, Y. Liu, L. Wang, H. Zhang, M. He, P. Wu, in:Z.G.J.C. Ruren Xu, Y. Wenfu (Eds.), Highly Efficient Epoxidation of Propylene over a Novel Ti-MWW Catalyst, Studies in Surface Science and Catalysis, Vol. 170, Elsevier 2007, pp. 1236-1243.[65] L. Ding, G. Jin, H. Gao, Z. Huang, C. Kang, HMS mesoporous materials containing Ti catalysts and the research of their catalytic properties for propylene epoxidation, J. Mol. Catal. (China28(2014) 303-311.[66] W. Zhan, J. Yao, Z. Xiao, Y. Guo, Y. Wang, Y. Guo, G. Lu, Catalytic performance of TiSBA-15 prepared by chemical vapor deposition for propylene epoxidation:The effects of SBA-15 support and silylation, Microporous Mesoporous Mater. 183(2014) 150-155.[67] A. Held, P. Florczak, Vanadium, niobium and tantalum modified mesoporous molecular sieves as catalysts for propene epoxidation, Catal. Today 142(2009) 329-334.[68] Y.Y. Liu, K. Murata, M. Inaba, Synthesis and catalytic activity of niobium-containing hexagonal mesoporous silica, Chem. Lett. 32(2003) 992-993.[69] S. Telalovic, A. Ramanathan, G. Mul, U. Hanefeld, TUD-1:Synthesis and application of a versatile catalyst, carrier, material, New J. Chem. 20(2010) 642-658.[70] S.K. Maiti, A. Ramanathan, W.H. Thompson, B. Subramaniam, Strategies to passivate Brønsted acidity in Nb-TUD-1 enhance hydrogen peroxide utilization and reduce metal leaching during ethylene epoxidation, Ind. Eng. Chem. Res. 56(2017) 1999-2007.[71] W.J. Yan, A. Ramanathan, P.D. Patel, S.K. Maiti, B.B. Laird, W.H. Thompson, B. Subramaniam, Mechanistic insights for enhancing activity and stability of Nb-incorporated silicates for selective ethylene epoxidation, J. Catal. 336(2016) 75-84.[72] W.J. Yan, A. Ramanathan, M. Ghanta, B. Subramaniam, Towards highly selective ethylene epoxidation catalysts using hydrogen peroxide and tungsten-or niobium-incorporated mesoporous silicate (KIT-6), Catal. Sci. Technol. 4(2014) 4433-4439.[73] R. Turco, A. Aronne, P. Carniti, A. Gervasini, L. Minieri, P. Pernice, R. Tesser, R. Vitiello, M. Di Serio, Influence of preparation methods and structure of niobium oxide-based catalysts in the epoxidation reaction, Catal. Today 254(2015) 99-103. |
[1] | Zijie Zhang, Qianyu Zha, Ying Liu, Zhibing Zhang, Jia Liu, Zheng Zhou. Study on the epoxidation of olefins with H2O2 catalyzed by biquaternary ammonium phosphotungstic acid [J]. Chinese Journal of Chemical Engineering, 2023, 58(6): 146-154. |
[2] | Qiongna Xiao, Yuyan Jiang, Weiqiang Yuan, Jingjing Chen, Haohong Li, Huidong Zheng. Styrene epoxidation catalyzed by polyoxometalate/quaternary ammonium phase transfer catalysts: The effect of cation size and catalyst deactivation mechanism [J]. Chinese Journal of Chemical Engineering, 2023, 55(3): 192-201. |
[3] | Xi Zhang, Xiaodong Wang, Wei Huang. Separation of a C3H6/C2H4 mixture using Pebax® 2533/PEG600 blend membranes [J]. Chinese Journal of Chemical Engineering, 2023, 54(2): 192-198. |
[4] | Xian-Tai Zhou, Ling-Ling Wang, Yang Li, Hong-Bing Ji. Liquid-phase epoxidation of propylene with molecular oxygen by chloride manganese meso-tetraphenylporphyrins [J]. Chinese Journal of Chemical Engineering, 2022, 48(8): 61-65. |
[5] | Song Hu, Jinlong Li, Qihua Wang, Weisheng Yang. Design and optimization of an integrated process for the purification of propylene oxide and the separation of propylene glycol by-product [J]. Chinese Journal of Chemical Engineering, 2022, 45(5): 111-120. |
[6] | Ran An, Shengxin Chen, Shun Hou, Yuting Zhu, Chunhu Li, Xinbao Zhu, Ruixia Liu, Weizhong An. Simulation and design of a heat-integrated double-effect reactive distillation process for propylene glycol methyl ether production [J]. Chinese Journal of Chemical Engineering, 2022, 52(12): 103-114. |
[7] | Daofei Lv, Junhao Xu, Pingjun Zhou, Shi Tu, Feng Xu, Jian Yan, Hongxia Xi, Zewei Liu, Wenbing Yuan, Qiang Fu, Xin Chen, Qibin Xia. Highly selective separation of propylene/propane mixture on cost-effectively four-carbon linkers based metal-organic frameworks [J]. Chinese Journal of Chemical Engineering, 2022, 51(11): 126-134. |
[8] | Chaohui He, Rajamani Krishna, Yang Chen, Jiangfeng Yang, Jinping Li, Libo Li. Ultrafine tuning of the pore size in zeolite A for efficient propyne removal from propylene [J]. Chinese Journal of Chemical Engineering, 2021, 37(9): 217-221. |
[9] | Zhenqiang Zhang, Danfeng Yu, Xiubin Xu, Huayi Li, Taoyan Mao, Cheng Zheng, Jianjia Huang, Hui Yang, Zihan Niu, Xu Wu. A polypropylene melt-blown strategy for the facile and efficient membrane separation of oil-water mixtures [J]. Chinese Journal of Chemical Engineering, 2021, 29(1): 383-390. |
[10] | Cheng Zuo, Man Wu, Qingjie Guo. The effect of the Ce content on the oxidative dehydrogenation of propane over CrOy-CeO2/γ-Al2O3 catalysts [J]. Chinese Journal of Chemical Engineering, 2020, 28(12): 3035-3043. |
[11] | Yuxi Zhou, Yang Wang, Wenduo Lu, Bing Yan, Anhui Lu. A high propylene productivity over B2O3/SiO2@honeycomb cordierite catalyst for oxidative dehydrogenation of propane [J]. Chinese Journal of Chemical Engineering, 2020, 28(11): 2778-2784. |
[12] | Zizong Wang, Hongqian Liu, Jiming Wang. Optimization of the separation unit of methanol to propylene (MTP) process and its application [J]. Chinese Journal of Chemical Engineering, 2019, 27(5): 1089-1093. |
[13] | Zhensheng Yang, Zheng Sun, Dongsheng Cui, Pingli Li, Zhiying Wang. TIPS behavior for IPP/nano-SiO2 blend membrane formation and its contribution to membrane morphology and performance [J]. Chin.J.Chem.Eng., 2019, 27(2): 467-475. |
[14] | Mengke Lu, Yanqiang Tang, Wenyao Chen, Guanghua Ye, Gang Qian, Xuezhi Duan, Weikang Yuan, Xinggui Zhou. Explosion limits estimation and process optimization of direct propylene epoxidation with H2 and O2 [J]. Chinese Journal of Chemical Engineering, 2019, 27(12): 2968-2978. |
[15] | Xiaojuan Jia, Zexian Low, He Chen, Sen Xiong, Yong Wang. Atomic layer deposition of Al2O3 on porous polypropylene hollow fibers for enhanced membrane performances [J]. Chin.J.Chem.Eng., 2018, 26(4): 695-700. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||