Methylation of olefins with ketene in zeotypes and its implications for the direct conversion of syngas to light olefins: a periodic DFT study

被引:39
|
作者
Wang, Chuan-Ming [1 ]
Wang, Yang-Dong [1 ]
Xie, Zai-Ku [1 ]
机构
[1] SINOPEC Shanghai Res Inst Petrochem Technol, State Key Lab Green Chem Engn & Ind Catalysis, Shanghai 201208, Peoples R China
基金
美国国家科学基金会;
关键词
FISCHER-TROPSCH SYNTHESIS; METHANOL-TO-HYDROCARBONS; DIMETHYL ETHER; SYNTHESIS GAS; SELECTIVE CARBONYLATION; PRODUCT SELECTIVITY; REACTION-MECHANISM; CATALYSTS; ZEOLITE; REACTIVITY;
D O I
10.1039/c6cy01095d
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The direct conversion of syngas to light olefins with high selectivity is of great significance as it offers an option to produce ethene, propene, or butenes from nonpetroleum resources. Recent studies (Science, 2016, 351, 1065-1068) reported a process named OX-ZEO, activating CO and H-2 to light olefins with selectivity as high as 80% using bifunctional catalysts. It was verified that ketene, produced from partially reduced oxide (ZnCrOx), is an important intermediate to be transformed into the desired olefins in acidic zeolite (H-SAPO-34). In this work, we theoretically illustrated the evolution pathway of ketene with olefins, a key step in the hydrocarbon pool mechanism for chain propagation, to understand the conversion from ketene to olefins in H-SAPO-34. We revealed that the framework-bounded CH3CO species (CH(3)COZ), an intermediate produced via the protonation of ketene, is an important methylating agent towards hydrocarbon pool in zeotypes. It is the direct associative pathway other than the sequential dissociative pathway that contributes to the methylation between CH(3)COZ and tetramethylethene (TME) as a representative olefin-based hydrocarbon pool. The effect of acid strength is also studied in a series of metal isomorphically substituted CHA-structured zeolites or zeotypes. The scaling relations of the transition state enthalpies with the acid strength using the adsorption enthalpy of ammonia as a descriptor can be established in both key elementary steps, i.e. the decarbonylation of CH(3)COZ and the methylation of CH(3)COZ with TME; the enthalpy barrier of the latter step is more sensitive to acid strength than the former one while both decreases with the increase of acid strength. These theoretical results may provide some implications to understand the key role of ketene and tailor catalyst structures in the OX-ZEO process.
引用
收藏
页码:6644 / 6649
页数:6
相关论文
共 50 条
  • [1] Research progress on the direct catalytic conversion of syngas to light olefins
    Hu W.
    Wang Y.
    Wang C.
    Huagong Jinzhan/Chemical Industry and Engineering Progress, 2022, 41 (09): : 4754 - 4766
  • [2] Direct Conversion Process from Syngas to Light Olefins - A Process Design Study
    van den Berg, Henk
    van der Ham, Louis
    PRES 2010: 13TH INTERNATIONAL CONFERENCE ON PROCESS INTEGRATION, MODELLING AND OPTIMISATION FOR ENERGY SAVING AND POLLUTION REDUCTION, 2010, 21 : 331 - 336
  • [3] Selective conversion of syngas to light olefins
    Jiao, Feng
    Li, Jinjing
    Pan, Xiulian
    Xiao, Jianping
    Li, Haobo
    Ma, Hao
    Wei, Mingming
    Pan, Yang
    Zhou, Zhongyue
    Li, Mingrun
    Miao, Shu
    Li, Jian
    Zhu, Yifeng
    Xiao, Dong
    He, Ting
    Yang, Junhao
    Qi, Fei
    Fu, Qiang
    Bao, Xinhe
    SCIENCE, 2016, 351 (6277) : 1065 - 1068
  • [4] Study of syngas conversion to light olefins by statistical models
    Shiva, Mehdi
    Atashi, Hossein
    Mirzaei, Ali Akbar
    Arsalanfar, Maryam
    Zare, Akbar
    FUEL, 2014, 123 : 205 - 210
  • [5] Study of Syngas Conversion to Light Olefins by Response Surface Methodology
    Atashi, Hossein
    Shiva, Mehdi
    Tabrizi, Farshad Farshchi
    Mirzaei, Ali Akbar
    JOURNAL OF CHEMISTRY, 2013, 2013
  • [6] Role of SAPO-18 Acidity in Direct Syngas Conversion to Light Olefins
    Li, Gen
    Jiao, Feng
    Pan, Xiulian
    Li, Na
    Miao, Dengyun
    Li, Lin
    Bao, Xinhe
    ACS CATALYSIS, 2020, 10 (21): : 12370 - 12375
  • [7] Direct Conversion of Syngas into Light Olefins with Low CO2 Emission
    Wang, Sen
    Wang, Pengfei
    Shi, Dezhi
    He, Shipei
    Zhang, Li
    Yan, Wenjun
    Qin, Zhangfeng
    Li, Junfen
    Dong, Mei
    Wang, Jianguo
    Olsbye, Unni
    Fan, Weibin
    ACS CATALYSIS, 2020, 10 (03): : 2046 - 2059
  • [8] A CoFe Bimetallic Catalyst for the Direct Conversion of Syngas to Olefins
    Wang, Xinxing
    Lin, Tiejun
    Lv, Dong
    An, Yunlei
    Qi, Xingzhen
    Gong, Kun
    Zhong, Liangshu
    CATALYSTS, 2023, 13 (12)
  • [9] Role of Manganese Oxide in Syngas Conversion to Light Olefins
    Zhu, Yifeng
    Pan, Xiulian
    Jiao, Feng
    Li, Jian
    Yang, Junhao
    Ding, Minzheng
    Han, Yong
    Liu, Zhi
    Bao, Xinhe
    ACS CATALYSIS, 2017, 7 (04): : 2800 - 2804
  • [10] Recent advances on syngas conversion targeting light olefins
    Zhao, Shangqing
    Li, Haiwei
    Wang, Bo
    Yang, Xiaolong
    Peng, Yanhua
    Du, Hui
    Zhang, Yan
    Han, Dezhi
    Li, Zhuo
    FUEL, 2022, 321