CIESC Journal ›› 2021, Vol. 72 ›› Issue (2): 841-851.DOI: 10.11949/0438-1157.20201529
• Reviews and monographs • Previous Articles Next Articles
LI Qiulin1(),LUO Liqiong1,LIU Pingwei1,2,LI Bogeng1,WANG Wenjun1,2()
Received:
2020-10-30
Revised:
2020-12-30
Online:
2021-02-05
Published:
2021-02-05
Contact:
WANG Wenjun
李秋霖1(),罗理琼1,刘平伟1,2,李伯耿1,王文俊1,2()
通讯作者:
王文俊
作者简介:
李秋霖(1996—),男,硕士研究生,基金资助:
CLC Number:
LI Qiulin, LUO Liqiong, LIU Pingwei, LI Bogeng, WANG Wenjun. Preparation of linear low density polyethylenes/polyolefin thermoplastic elastomers by tandem polymerizations[J]. CIESC Journal, 2021, 72(2): 841-851.
李秋霖, 罗理琼, 刘平伟, 李伯耿, 王文俊. 串级催化聚合制备线性低密度聚乙烯/聚烯烃热塑性弹性体[J]. 化工学报, 2021, 72(2): 841-851.
Add to citation manager EndNote|Ris|BibTeX
1 | 任慧勇. 我国聚乙烯产业现状及未来发展分析[J]. 化工新型材料, 2020, 48(7): 47-51. |
Ren H Y. Current situation and future development analysis of PE in China[J]. New Chemical Materials, 2020, 48(7): 47-51. | |
2 | 冯永彬. 线性低密度聚乙烯的生产与应用[J]. 才智, 2013, (23): 252. |
Feng Y B. Production and application of linear low density polyethylene[J]. Ability and Wisdom, 2013, (23): 252. | |
3 | Bensason S, Minick J, Moet A, et al. Classification of homogeneous ethylene‐octene copolymers based on comonomer content[J]. Journal of Polymer Science Part B: Polymer Physics, 1996, 34(7): 1301-1315. |
4 | Spalding M A, Chatterjee A. Handbook of Industrial Polyethylene and Technology: Definitive Guide to Manufacturing, Properties, Processing, Applications and Markets[M]. New York: John Wiley & Sons Inc., 2017: 105-138. |
5 | 董博, 孙月明, 王媚, 等. 乙烯四聚合成1-辛烯研究新进展[J]. 高分子通报, 2013, (12): 38-43. |
Dong B, Sun Y M, Wang M, et al. Recent progresses of ethylene tetramerization toward 1-octene[J]. Polymer Bulletin, 2013, (12): 38-43. | |
6 | Beach D L, Kissin Y V. Dual functional catalysis for ethylene polymerization to branched polyethylene(Ⅰ): Evaluation of catalytic systems[J]. J. Polym. Sci.: Polym. Chem. Ed., 1984, 22: 3027-3042. |
7 | Lallemand M, Finiels A, Fajula F, et al. Catalytic oligomerization of ethylene over Ni-containing dealuminated Y zeolites[J]. Applied Catalysis A: General, 2006, 301(2): 196-201. |
8 | de Oliveira L L, Campedelli R R, Kuhn M C A, et al. Highly selective nickel catalysts for ethylene oligomerization based on tridentate pyrazolyl ligands[J]. Journal of Molecular Catalysis A: Chemical, 2008, 288(1/2): 58-62. |
9 | Wright W R H, Batsanov A S, Messinis A M, et al. Application of molybdenum bis (imido) complexes in ethylene dimerisation catalysis[J]. Dalton Transactions, 2012, 41(18): 5502-5511. |
10 | Ainooson M K, Guzei I A, Spencer L C, et al. Pyrazolylimine iron and cobalt, and pyrazolylamine nickel complexes: synthesis and evaluation of nickel complexes as ethylene oligomerization catalysts[J]. Polyhedron, 2013, 53: 295-303. |
11 | Tang X Y, Igarashi A, Sun W H, et al. Synthesis of (imido) vanadium (Ⅴ) complexes containing 8-(2, 6-dimethylanilide)-5, 6, 7-trihydroquinoline ligands: highly active catalyst precursors for ethylene dimerization[J]. Organometallics, 2014, 33(4): 1053-1060. |
12 | Wang T, Dong B, Chen Y H, et al. Nickel complexes incorporating pyrazole-based ligands for ethylene dimerization to 1-butylene[J]. Journal of Organometallic Chemistry, 2015, 798: 388-392. |
13 | Messinis A, Wright W R H, Batsanov A S, et al. Exploration of homogeneous ethylene dimerization mediated by tungsten mono (imido) complexes[J]. ACS Catalysis, 2018, 8(12): 11235-11248. |
14 | Messinis A M, Batsanov A S, Howard J A K, et al. Activated niobium and tantalum imido complexes: from tuneable polymerization to selective ethylene dimerization systems[J]. ChemCatChem, 2019, 11(6): 1756-1764. |
15 | Kuboki M, Nomura K. (Arylimido) niobium (V) complexes containing 2-pyridylmethylanilido ligand as catalyst precursors for ethylene dimerization that proceeds via cationic Nb (V) species[J]. Organometallics, 2019, 38(7): 1544-1559. |
16 | 薛祖源. Alphabutol工艺乙烯二聚制丁烯-1技术的评析[J]. 化工设计, 1996, (1): 8-12. |
Xue Z Y. Analysis of ethylene dimerization to 1-butene technology in Alphabutol process[J]. Chemical Engineering Design, 1996, (1): 8-12. | |
17 | McGuinness D S. Olefin oligomerization via metallacycles: dimerization, trimerization, tetramerization, and beyond[J]. Chemical Reviews, 2011, 111(3): 2321-2341. |
18 | Forestière A, Olivier-Bourbigou H, Saussine L. Oligomerization of monoolefins by homogeneous catalysts[J]. ChemInform, 2012, 43(6): 649-667. |
19 | Carter C O. Surface conditioning in olefin dimerization reactors: US 4538018[P]. 1985-8-27. |
20 | Carter C O. Olefin dimerization: US 4242531[P]. 1980-12-30. |
21 | Schmidt R. Catalyst compositions for ethylene dimerization: US 0325274A1[P]. 2016-11-10. |
22 | Barnhart R W, Bazan G C, Mourey T. Synthesis of branched polyolefins using a combination of homogeneous metallocene mimics[J]. Journal of the American Chemical Society, 1998, 120(5): 1082-1083. |
23 | Komon Z J A, Bazan G C. Synthesis of branched polyethylene by tandem catalysis[J]. Macromolecular Rapid Communications, 2001, 22(7): 467-478. |
54 | Aluthge D C, Sattler A, Al-Harthi M A, et al. Cosupported tandem catalysts for production of linear low-density polyethylene from an ethylene-only feed[J]. ACS Catalysis, 2016, 6(10): 6581-6584. |
55 | Zhang J, Fan H, Li B G, et al. Modeling and kinetics of tandem polymerization of ethylene catalyzed by bis (2-dodecylsulfanyl-ethyl) amine-CrCl3 and Et (Ind)2ZrCl2[J]. Chemical Engineering Science, 2008, 63(8): 2057-2065. |
24 | 柳忠阳, 王军, 李秀华, 等. 一种新型制备 LLDPE 的双功能聚合催化体系 Ti(OBu-n)4/AIEt3-[Me2SiNtBuInd] ZrCI2/MAO[J]. 高等学校化学学报, 2001, 22(7): 1271-1273. |
Liu Z Y, Wang J, Li X H, et al. Preparation of LLDPE with dual-functional catalytic system Ti(OBu-n)4/AIEt3-[Me2SiNtBuInd] ZrCI2/MAO [J]. Chemical Research in Chinese Universities, 2001, 22(7): 1271-1273. | |
25 | Bianchini C, Frediani M, Giambastiani G, et al. Amorphous polyethylene by tandem action of cobalt and titanium single-site catalysts[J]. Macromolecular Rapid Communications, 2005, 26(15): 1218-1223. |
26 | 柳忠阳, 杨玲, 谭志俊, 等. 桥联茂金属催化剂用于双功能催化体系制备LLDPE的研究[J]. 高分子学报, 2001, (4): 471-475. |
56 | 郭松. 高性能乙烯/1-已烯共聚物的串级催化法制备及表征[D]. 杭州: 浙江大学, 2015. |
Guo S. High performance ethylene/1-hexene copolymers: preparation with tandem catalysis and characterization[D]. Hangzhou: Zhejiang University, 2015. | |
57 | Bollmann A, Blann K, Dixon J T, et al. Ethylene tetramerization: a new route to produce 1-octene in exceptionally high selectivities[J]. Journal of the American Chemical Society, 2004, 126(45): 14712-14713. |
58 | Rucklidge A J, McGuinness D S, Tooze R P, et al. Ethylene tetramerization with cationic chromium (Ⅰ) complexes[J]. Organometallics, 2007, 26(10): 2782-2787. |
59 | Kim S K, Kim T J, Chung J H, et al. Bimetallic ethylene tetramerization catalysts derived from chiral DPPDME ligands: syntheses, structural characterizations, and catalytic performance of [(DPPDME) CrCl3]2 (DPPDME= S, S- and R, R-chiraphos and meso-achiraphos)[J]. Organometallics, 2010, 29(22): 5805-5811. |
60 | Shaikh Y, Albahily K, Sutcliffe M, et al. A highly selective ethylene tetramerization catalyst[J]. Angewandte Chemie International Edition, 2012, 51(6): 1366-1369. |
61 | Zhang L, Meng X, Chen Y, et al. Chromium-based ethylene tetramerization catalysts supported by silicon‐bridged diphosphine ligands: further combination of high activity and selectivity[J]. ChemCatChem, 2017, 9(1): 76-79. |
62 | Kim E H, Lee H M, Jeong M S, et al. Methylaluminoxane-free chromium catalytic system for ethylene tetramerization[J]. ACS Omega, 2017, 2(3): 765-773. |
63 | Liu L, Liu Z, Cheng R, et al. Unraveling the effects of H2, N substituents and secondary ligands on Cr/PNP-catalyzed ethylene selective oligomerization[J]. Organometallics, 2018, 37(21): 3893-3900. |
64 | Alam F, Zhang L, Wei W, et al. Catalytic systems based on chromium (Ⅲ) silylated-diphosphinoamines for selective ethylene tri-/tetramerization[J]. ACS Catalysis, 2018, 8(11): 10836-10845. |
65 | Blann K, Bollmann A, Dixon J T, et al. Tetramerization of olefins: US 7511183[P]. 2009-3-31. |
66 | Zoricak P, Brown S J, Chisholm P S. Continuous ethylene tetramerization process: US 9688588[P]. 2017-6-27. |
67 | de Wet‐Roos D, du Toit A, Joubert D J. Homogeneous tandem catalysis of the bis‐(diphenylphosphino)‐amine/chromium tetramerization catalyst with metallocene catalysts[J]. Journal of Polymer Science Part A: Polymer Chemistry, 2006, 44(23): 6847-6856. |
68 | Jiang T, Huang Z, Luo M, et al. Preparation of ethylene/1‐octene copolymers from ethylene stock with tandem catalytic system[J]. Journal of Applied Polymer Science, 2008, 107(5): 3071-3075. |
69 | Resconi L, Piemontesi F, Franciscono G, et al. Olefin polymerization at bis (pentamethylcyclopentadienyl) zirconium and-hafnium centers: chain-transfer mechanisms[J]. Journal of the American Chemical Society, 1992, 114(3): 1025-1032. |
70 | Shiono T, Azad S M, Ikeda T. Copolymerization of atactic polypropene macromonomer with propene by an isospecific metallocene catalyst[J]. Macromolecules, 1999, 32(18): 5723-5727. |
71 | Park S, Wang W J, Zhu S. Continuous solution copolymerization of ethylene with propylene using a constrained geometry catalyst system[J]. Macromolecular Chemistry and Physics, 2000, 201(16): 2203-2209. |
72 | Cherian A E, Lobkovsky E B, Coates G W. Synthesis of allyl-terminated syndiotactic polypropylene: macromonomers for the synthesis of branched polyolefins[J]. Macromolecules, 2005, 38(15): 6259-6268. |
73 | Terao H, Ishii S, Saito J, et al. Phenoxycycloalkylimine ligated zirconium complexes for ethylene polymerization: formation of vinyl-terminated low molecular weight polyethylenes with high efficiency[J]. Macromolecules, 2006, 39(25): 8584-8593. |
74 | Contrella N D, Sampson J R, Jordan R F. Copolymerization of ethylene and methyl acrylate by cationic palladium catalysts that contain phosphine-diethyl phosphonate ancillary ligands[J]. Organometallics, 2014, 33(13): 3546-3555. |
75 | 张进, 杨飞, 王彬, 等. 双(β-酮亚胺)锆催化乙烯齐聚制备高分子量线性α-烯烃[J]. 高分子学报, 2020, 51(11): 1285-1294. |
Zhang J, Yang F, Wang B, et al. Efficient oligomerization of ethylene to linear α-olefins with high molecular weight by bis(β -ketiminato) zirconium catalysts[J]. Acta Polymerica Sinica, 2020, 51(11): 1285-1294. | |
76 | Sperber O, Kaminsky W. Synthesis of long-chain branched comp-structured polyethylene from ethylene by tandem action of two single-site catalysts[J]. Macromolecules, 2003, 36(24): 9014-9019. |
77 | Kolodka E, Wang W J, Zhu S, et al. Copolymerization of propylene with poly (ethylene-co-propylene) macromonomer and branch chain-length dependence of rheological properties[J]. Macromolecules, 2002, 35(27): 10062-10070. |
78 | Whitney P M, Zhu S. Differential scanning calorimetry of copolymer of isotactic polypropylene backbone with grafted poly (ethylene‐co‐propylene) branches[J]. Journal of Applied Polymer Science, 2006, 99(6): 3380-3388. |
79 | Kolodka E, Wang W J, Zhu S, et al. Synthesis and characterization of long-chain-branched polyolefins with metallocene catalysts: copolymerization of ethylene with poly (ethylene-co-propylene) macromonomer[J]. Macromolecular Rapid Communications, 2003, 24(4): 311-315. |
80 | Ohtaki H, Deplace F, Vo G D, et al. Allyl-terminated polypropylene macromonomers: a route to polyolefin elastomers with excellent elastic behavior[J]. Macromolecules, 2015, 48(20): 7489-7494. |
81 | Zhang K, Liu P, Wang W J, et al. Preparation of comb-shaped polyolefin elastomers having ethylene/1-octene copolymer backbone and long chain polyethylene branches via a tandem metallocene catalyst system[J]. Macromolecules, 2018, 51(21): 8790-8799. |
82 | Jones D J, Gibson V C, Green S M, et al. Discovery and optimization of new chromium catalysts for ethylene oligomerization and polymerization aided by high-throughput screening[J]. Journal of the American Chemical Society, 2005, 127(31): 11037-11046. |
83 | Komon Z J A, Diamond G M, Leclerc M K, et al. Triple tandem catalyst mixtures for the synthesis of polyethylenes with varying structures[J]. Journal of the American Chemical Society, 2002, 124(51): 15280-15285. |
26 | Liu Z Y, Yang L, Tan Z J, et al. Preparation of LLDPE using a dual functional catalytic system of Ti(OBu)4-metallocene/B(C6F5)3-AlEt3[J]. Acta Polymerica Sinica, 2001, (4): 471-475. |
27 | Komon Z J A, Bu X, Bazan G C. Synthesis of butene- ethylene and hexene- butene- ethylene copolymers from ethylene via tandem action of well-defined homogeneous catalysts[J]. Journal of the American Chemical Society, 2000, 122(8): 1830-1831. |
28 | 柳忠阳, 王军, 徐德民, 等. 载体茂金属用于原位聚合反应制备LLDPE研究[J]. 高分子学报, 2001, (4): 509-512. |
Liu Z Y, Wang J, Xu D M, et al. Study on polymerization for LLDPE by combining supported metallocene and Ti(On-Bu)4 as catalysts[J]. Acta Polymerica Sinica, 2001, (4): 509-512. | |
29 | Bianchini C, Giambastiani G, Meli A, et al. LLDPE with exclusively ethyl branches by tandem catalysis with single-site Zr(Ⅳ)/Co(Ⅱ) catalysts[J]. Topics in Catalysis, 2008, 48(1/2/3/4): 107-113. |
30 | Carter A, Cohen S A, Cooley N A, et al. High activity ethylene trimerisation catalysts based on diphosphine ligands[J]. Chemical Communications, 2002, (8): 858-859. |
31 | Mahomed H, Bollmann A, Dixon J T, et al. Ethylene trimerisation catalyst based on substituted cyclopentadienes[J]. Applied Catalysis A: General, 2003, 255(2): 355-359. |
32 | McGuinness D S, Wasserscheid P, Keim W, et al. First Cr (Ⅲ)- SNS complexes and their use as highly efficient catalysts for the trimerization of ethylene to 1-hexene[J]. Journal of the American Chemical Society, 2003, 125(18): 5272-5273. |
33 | Jiang T, Ji R, Chen H, et al. Effect of alkylaluminum activators on ethylene trimerization based on 2, 5‐DMP/Cr (Ⅲ)/TCE catalyst system[J]. Chinese Journal of Chemistry, 2011, 29(6): 1149-1153. |
34 | Ahmadi E, Mohamadnia Z, Haghighi M N. High productive ethylene trimerization catalyst based on CrCl3/SNS ligands[J]. Catalysis Letters, 2011, 141(8): 1191. |
35 | Azimnavahsi L, Mohamadnia Z. Optimization of ethylene trimerization using catalysts based on TiCl3/half‐sandwich ligands[J]. Applied Organometallic Chemistry, 2019, 33(2): e4666. |
36 | Cheredilin D N, Sheloumov A M, Senin A A, et al. Catalytic systems for production of 1-hexene by selective ethylene trimerization[J]. Petroleum Chemistry, 2020, 60(1): 55-68. |
37 | Briggs J R. Process for trimerization: US 4668838[P]. 1987-5-26. |
38 | Knudsen R D, Freeman J W. Catalyst and processes for olefin trimerization: US 0053742A1[P]. 2001-12-20. |
39 | Wu F J. Ethylene trimerization: US 5811618[P]. 1998-9-22. |
40 | Gao X, Carter C A G, Henderson L D. Trimerization: US 8252955[P]. 2012-8-28. |
41 | 周一兵. 1-己烯研发: 打破国外垄断, 促进我国塑料工业发展[J]. 中国石化, 2016, (2): 60-61. |
Zhou Y B. Research and development of 1-hexene: breaking foreign monopoly and promoting the development of China's plastics industry[J]. Sinopec Monthly, 2016, (2): 60-61. | |
42 | 祁彦平, 隋军龙, 吴红飞, 等. 一种乙烯三聚用催化剂组合物及其应用: 107282114A [P]. 2017-10-24. |
Qi Y P, Sui J L, Wu H F, et al. Catalyst composition for ethylene trimerization and its application: 107282114A [P]. 2017-10-24. | |
43 | 刘革. 1-己烯生产技术进展与市场分析[J]. 石油化工技术与经济, 2019, 35(6): 8-11. |
Liu G. Recent progress in synthesis technology and market situation of 1-hexene[J]. Technology & Economics in Petrochemicals, 2019, 35(6): 8-11. | |
44 | 李连鹏, 宋延安, 王书卫, 等. 乙烯/1-丁烯和乙烯/1-己烯共聚管材料的结构研究[J]. 弹性体, 2019, 29(6): 30-34. |
Li L P, Song Y A, Wang S W, et al. Structure of ethylene/1-butene and ethylene/1-hexene copolymer pipe materials[J]. China Elastomerics, 2019, 29(6): 30-34. | |
45 | Ye Z, AlObaidi F, Zhu S. A tandem catalytic system for the synthesis of ethylene-hex-1-ene copolymers from ethylene stock[J]. Macromolecular Rapid Communications, 2004, 25(5): 647-652. |
46 | Alobaidi F, Ye Z, Zhu S. Direct synthesis of linear low‐density polyethylene of ethylene/1‐hexene from ethylene with a tandem catalytic system in a single reactor[J]. Journal of Polymer Science Part A: Polymer Chemistry, 2004, 42(17): 4327-4336. |
47 | McGuinness D S, Wasserscheid P, Keim W, et al. Novel Cr-PNP complexes as catalysts for the trimerisation of ethylene[J]. Chemical Communications, 2003, (3): 334-335. |
48 | de Wet-Roos D, Dixon J T. Homogeneous tandem catalysis of bis (2-decylthioethyl) amine- chromium trimerization catalyst in combination with metallocene catalysts[J]. Macromolecules, 2004, 37(25): 9314-9320. |
49 | Zhang J, Li B G, Fan H, et al. Synthesis of ethylene‐1‐hexene copolymers from ethylene stock by tandem action of bis (2‐dodecylsulfanyl‐ethyl) amine‐CrCl3 and Et (Ind)2ZrCl2[J]. Journal of Polymer Science Part A: Polymer Chemistry, 2007, 45(16): 3562-3569. |
50 | Guo S, Fan H, Bu Z, et al. Tandem action of SNS-Cr and CGC-Ti in preparation of ethylene-1-hexene copolymers from ethylene feedstock[J]. Macromolecular Chemistry and Physics, 2014, 215(17): 1661-1667. |
51 | Guo S, Fan H, Bu Z, et al. High temperature high pressure tandem polymerization of ethylene for synthesis of ethylene-1-hexene copolymers from single reactor with SNS-Cr and CGC-Ti catalysts[J]. Macromolecular Reaction Engineering, 2015, 9(1): 32-39. |
52 | Zhang J, Fan H, Li B G, et al. Effect of catalysts supporting on tandem polymerization of ethylene stock in synthesis of ethylene- 1-hexene copolymer[J]. Industrial & Engineering Chemistry Research, 2008, 47(15): 5369-5375. |
53 | Karbach F F, Macko T, Duchateau R. Preparation of ethylene/1-hexene copolymers from ethylene using a fully silica-supported tandem catalyst system[J]. Macromolecules, 2016, 49(4): 1229-1241. |
[1] | Hao WANG, Zhenlei WANG. Model simplification strategy of cracking furnace coking based on adaptive spectroscopy method [J]. CIESC Journal, 2023, 74(9): 3855-3864. |
[2] | Lingding MENG, Ruqing CHONG, Feixue SUN, Zihui MENG, Wenfang LIU. Immobilization of carbonic anhydrase on modified polyethylene membrane and silica [J]. CIESC Journal, 2023, 74(8): 3472-3484. |
[3] | Chengying ZHU, Zhenlei WANG. Operation optimization of ethylene cracking furnace based on improved deep reinforcement learning algorithm [J]. CIESC Journal, 2023, 74(8): 3429-3437. |
[4] | Mengmeng ZHANG, Dong YAN, Yongfeng SHEN, Wencui LI. Effect of electrolyte types on the storage behaviors of anions and cations for dual-ion batteries [J]. CIESC Journal, 2023, 74(7): 3116-3126. |
[5] | Zhen LI, Bo ZHANG, Liwei WANG. Development and properties of PEG-EG solid-solid phase change materials [J]. CIESC Journal, 2023, 74(6): 2680-2688. |
[6] | Zizong WANG, Hansheng SUO, Xueliang ZHAO. Research and construction of digital twin intelligent ethylene plant [J]. CIESC Journal, 2023, 74(3): 1175-1186. |
[7] | Qian LIU, Yu CAO, Qi ZHOU, Jingshan MU, Wei LI. Design of Ziegler-Natta catalyst modified with pore structure and preparation of UHMWPE with high impact resistance and low entanglement [J]. CIESC Journal, 2023, 74(3): 1092-1101. |
[8] | Lei WANG, Yong JIANG, Dazhong ZHONG, Jiayuan LI, Genyan HAO, Qiang ZHAO, Jinping LI. Carbonized metal-organic framework for carbon dioxide reduction to ethylene and ethanol [J]. CIESC Journal, 2022, 73(8): 3576-3585. |
[9] | Xiaoqiang FAN, Zhengliang HUANG, Jingyuan SUN, Jingdai WANG, Xiaofei WANG, Xiaobo HU, Guodong HAN, Yongrong YANG, Wenqing WU. Development of cloudy gas-liquid fluidized bed ethylene polymerization process and high performance products [J]. CIESC Journal, 2022, 73(6): 2742-2747. |
[10] | Shiyi GE, Yao YANG, Zhengliang HUANG, Jingyuan SUN, Jingdai WANG, Yongrong YANG. Analyzing particle growth and morphology evolution of polyethylene based on electrostatic separation [J]. CIESC Journal, 2022, 73(4): 1585-1596. |
[11] | Lixia WANG, Zhaojie BI, Miaolei SHI, Chen WANG, Dongfang WANG, Qian LI. Effect of blending mode and ratio of UHMWPE/PEG on the entanglement behavior and properties of UHMWPE [J]. CIESC Journal, 2022, 73(2): 933-940. |
[12] | Bo ZHANG, Xiaofei CHEN, Siyao ZHAO, Xin ZHOU. Progress of ethane-selective adsorbents for efficient purification of ethylene [J]. CIESC Journal, 2022, 73(10): 4255-4267. |
[13] | GAO Shuaitao, LIU Xueke, ZHANG Li, LIU Fen, YU Jiang, SHANG Jianfeng, OU Tianxiong, ZHOU Zheng, CHEN Pingwen. Aspen Plus simulation on selective separation of high concentration acid gas of H2S and CO2 [J]. CIESC Journal, 2021, 72(S1): 413-420. |
[14] | Xingchu HE,Dezhen CHEN,Zhenfei MEI,Batuer ADILI,Qing AN. ReaxFF MD study on the pyrolysis of PE catalyzed by CaO and the effect of H2O on the catalytic process and mechanism analysis [J]. CIESC Journal, 2021, 72(9): 4665-4674. |
[15] | LIANG Xingtang, LI Fengzhi, ZHONG Shuming, ZHANG Ruirui, JIAO Shufei, WANG Shuangshuang, YIN Yanzhen. In-situ modification of porous juncus with polyethyleneimine for efficient capture of Cr(Ⅵ) from wastewater [J]. CIESC Journal, 2021, 72(6): 3380-3389. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||