Chemical and engineering bases for green H2O2 production and related oxidation and ammoximation of olefins and analogues

被引:9
作者
Qiao, Minghua [1 ,2 ]
Zhou, Xinggui [3 ]
Du, Zexue [4 ]
Wu, Peng [5 ]
Zong, Baoning [4 ]
机构
[1] Fudan Univ, Collaborat Innovat Ctr Chem Energy Mat, Dept Chem, Shanghai 200438, Peoples R China
[2] Fudan Univ, Shanghai Key Lab Mol Catalysis & Innovat Mat, Shanghai 200438, Peoples R China
[3] East China Univ Sci & Technol, State Key Lab Chem Engn, Shanghai 200237, Peoples R China
[4] SINOPEC, Res Inst Petr Proc, State Key Lab Petr Mol & Proc Engn, Beijing 100083, Peoples R China
[5] East China Normal Univ, Sch Chem & Mol Engn, State Key Lab Petr Mol & Proc Engn, Shanghai 200062, Peoples R China
关键词
hydrogen peroxide; oxidation; ammoximation; propylene oxide; epichlorohydrin; cyclohexanone oxime; ENHANCED CATALYTIC PERFORMANCE; DIRECT PROPYLENE EPOXIDATION; VAPOR-PHASE EPOXIDATION; HYDROGEN-PEROXIDE; CARBON NITRIDE; OXYGEN REDUCTION; CYCLOHEXANONE AMMOXIMATION; PRODUCTION TECHNOLOGY; PROPENE EPOXIDATION; TECHNICAL ASPECTS;
D O I
10.1093/nsr/nwae243
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Plastics, fibers and rubber are three mainstream synthetic materials that are essential to our daily lives and contribute significantly to the quality of our lives. The production of the monomers of these synthetic polymers usually involves oxidation or ammoximation reactions of olefins and analogues. However, the utilization of C, O and N atoms in current industrial processes is <80%, which represents the most environmentally polluting processes for the production of basic chemicals. Through innovation and integration of catalytic materials, new reaction pathways, and reaction engineering, the Research Institute of Petroleum Processing, Sinopec Co., Ltd. (RIPP) and its collaborators have developed unique H2O2-centered oxidation/ammoximation technologies for olefins and analogues, which has resulted in a & YEN;500 billion emerging industry and driven trillions of & YEN;s' worth of downstream industries. The chemical and engineering bases of the production technologies mainly involve the integration of slurry-bed reactors and microsphere catalysts to enhance H2O2 production, H2O2 propylene/chloropropylene epoxidation for the production of propylene oxide/epichlorohydrin, and integration of H2O2 cyclohexanone ammoximation and membrane separation to innovate the caprolactam production process. This review briefly summarizes the whole process from the acquisition of scientific knowledge to the formation of an industrial production technology by RIPP. Moreover, the scientific frontiers of H2O2 production and related oxidation/ammoximation processes of olefins and analogues are reviewed, and new technological growth points are envisaged, with the aim of maintaining China's standing as a leader in the development of the science and technologies of H2O2 production and utilization.
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页数:18
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共 110 条
[1]  
[Anonymous], Eco-Profiles of Plastics
[2]   Direct synthesis of hydrogen peroxide on palladium catalyst supported on sulfonic acid-functionalized silica [J].
Blanco-Brieva, Gema ;
de Frutos Escrig, M. Pilar ;
Campos-Martin, Jose M. ;
Fierro, Jose L. G. .
GREEN CHEMISTRY, 2010, 12 (07) :1163-1166
[3]   Transient technique for identification of true reaction intermediates: Hydroperoxide species in propylene epoxidation on gold/titanosilicate catalysts by X-ray absorption fine structure spectroscopy [J].
Bravo-Suarez, Juan J. ;
Bando, Kyoko K. ;
Lu, Jiqing ;
Haruta, Masatake ;
Fujitani, Tadahiro ;
Oyama, S. Ted .
JOURNAL OF PHYSICAL CHEMISTRY C, 2008, 112 (04) :1115-1123
[4]   Crafting Mussel-Inspired Metal Nanoparticle-Decorated Ultrathin Graphitic Carbon Nitride for the Degradation of Chemical Pollutants and Production of Chemical Resources [J].
Cai, Jingsheng ;
Huang, Jianying ;
Wang, Shanchi ;
Iocozzia, James ;
Sun, Zhongti ;
Sun, Jingyu ;
Yang, Yingkui ;
Lai, Yuekun ;
Lin, Zhiqun .
ADVANCED MATERIALS, 2019, 31 (15)
[5]   Selectivity of cobalt-based catalysts towards hydrogen peroxide formation during the reduction of oxygen [J].
Campos, Maria ;
Siriwatcharapiboon, Wilai ;
Potter, Robert J. ;
Horswell, Sarah L. .
CATALYSIS TODAY, 2013, 202 :135-143
[6]   Beyond fossil fuel-driven nitrogen transformations [J].
Chen, Jingguang G. ;
Crooks, Richard M. ;
Seefeldt, Lance C. ;
Bren, Kara L. ;
Bullock, R. Morris ;
Darensbourg, Marcetta Y. ;
Holland, Patrick L. ;
Hoffman, Brian ;
Janik, Michael J. ;
Jones, Anne K. ;
Kanatzidis, Mercouri G. ;
King, Paul ;
Lancaster, Kyle M. ;
Lymar, Sergei V. ;
Pfromm, Peter ;
Schneider, William F. ;
Schrock, Richard R. .
SCIENCE, 2018, 360 (6391)
[7]   Chemical Identification of Catalytically Active Sites on Oxygen-doped Carbon Nanosheet to Decipher the High Activity for Electro-synthesis Hydrogen Peroxide [J].
Chen, Shanyong ;
Luo, Tao ;
Chen, Kejun ;
Lin, Yiyang ;
Fu, Junwei ;
Liu, Kang ;
Cai, Chao ;
Wang, Qiyou ;
Li, Huangjingwei ;
Li, Xiaoqing ;
Hu, Junhua ;
Li, Hongmei ;
Zhu, Mingshan ;
Liu, Min .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2021, 60 (30) :16607-16614
[8]   Designing Boron Nitride Islands in Carbon Materials for Efficient Electrochemical Synthesis of Hydrogen Peroxide [J].
Chen, Shucheng ;
Chen, Zhihua ;
Siahrostami, Samira ;
Higgins, Drew ;
Nordlund, Dennis ;
Sokaras, Dimosthenis ;
Kim, Taeho Roy ;
Liu, Yunzhi ;
Yan, Xuzhou ;
Nilsson, Elisabeth ;
Sinclair, Robert ;
Norskov, Jens K. ;
Jaramillo, Thomas F. ;
Bao, Zhenan .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2018, 140 (25) :7851-7859
[9]   Mesokinetics as a Tool Bridging the Microscopic-to-Macroscopic Transition to Rationalize Catalyst Design [J].
Chen, Wenyao ;
Qian, Gang ;
Wan, Ying ;
Chen, De ;
Zhou, Xinggui ;
Yuan, Weikang ;
Duan, Xuezhi .
ACCOUNTS OF CHEMICAL RESEARCH, 2022, 55 (22) :3230-3241
[10]   SYNTHESIS OF PROPYLENE-OXIDE FROM PROPYLENE AND HYDROGEN-PEROXIDE CATALYZED BY TITANIUM SILICALITE [J].
CLERICI, MG ;
BELLUSSI, G ;
ROMANO, U .
JOURNAL OF CATALYSIS, 1991, 129 (01) :159-167