Formic acid assisted synthesis of Cu-ZnO-Al2O3 catalyst and its performance in CO2 hydrogenation to methanol

被引:3
|
作者
Jiang X.-Y. [1 ]
Yang W.-B. [1 ]
Song H. [1 ]
Ma Q.-X. [1 ]
Gao X.-H. [1 ]
Li P. [1 ]
Zhao T.-S. [1 ]
机构
[1] State Key Laboratory of High-efficiency Utilization of Coal and Green Chemical Engineering, College of Chemistry and Chemical Engineering, Ningxia University, Yinchuan
基金
中国国家自然科学基金;
关键词
CO[!sub]2[!/sub] hydrogenation; Cu-ZnO-Al[!sub]2[!/sub]O[!sub]3[!/sub; formic acid treatment; methanol;
D O I
10.1016/S1872-5813(22)60041-0
中图分类号
学科分类号
摘要
The Cu/Zn/Al precursor by coprecipitation was treated with formic acid and then calcined in N2 to obtain Cu-ZnO-Al2O3 catalyst (CZA) for the CO2 hydrogenation to methanol. XRD, BET, TG-DSC, SEM, H2-TPR, N2O titration, XPS-AES and CO2-TPD characterization techniques were used to analyze the phase composition, structural properties of the catalyst, the Cu specific surface area, the dispersion and valence of the Cu species. The results showed that the formic acid treatment tuned the ratio of Cu+ and Cu0, increased the number of medium-strong base sites in the catalyst, and raised the selectivity of methanol. Under reaction conditions of W/F(H2/CO2=70/23)=10 g∙h/mol, t =200 ℃ and p =3 MPa, using Cu-ZnO-Al2O3 treated under HCOOH/Cu (molar ratio) =0.8, the CO2 conversion and the methanol selectivity were 6.7% and 76.3%, respectively. © 2023 Science Press. All rights reserved.
引用
收藏
页码:120 / 128
页数:8
相关论文
共 45 条
  • [1] WOODARD D L, DAVIS S J, RANDERSON J T., Economic carbon cycle feedbacks may offset additional warming from natural feedbacks[J], Proc Natl Acad Sci USA, 116, 3, (2019)
  • [2] GAO Xin-hua, LU Peng-fei, CHEN Guo-hui, GUO Xin-yu, LIANG Jie, MA Qing-xiang, ZHANG Jian-li, FAN Su-bing, ZHAO Tian-sheng, Performance of K-Fe<sub>3</sub>O<sub>4</sub>/Ni-AlMCM-41 tandem catalyst for CO<sub>2</sub> hydrogenation to long-chain hydrocarbons[J], J Fuel Chem Technol, 49, 10, pp. 504-512, (2021)
  • [3] RA E C, KIM K Y, KIM E H, LEE H, AN K, LEE J S., Recycling carbon dioxide through catalytic hydrogenation: Recent key developments and perspectives[J], ACS Catal, 10, 19, pp. 11318-11345, (2020)
  • [4] POROSOFF M D, YAN B H, CHEN J G., Catalytic reduction of CO<sub>2</sub> by H<sub>2</sub> for synthesis of CO, methanol and hydrocarbons: Challenges and opportunities[J], Energy Environ Sci, 9, 1, (2016)
  • [5] SEHESTED J., Industrial and scientific directions of methanol catalyst development[J], J Catal, 371, pp. 368-375, (2019)
  • [6] OLAH G A., Beyond oil and gas: The methanol economy[J], Angew Chem Int Ed, 44, 18, pp. 2636-2639, (2005)
  • [7] JIANG X, NIE X W, GUO X W, SONG C S, CHEN J G., Recent advances in carbon dioxide hydrogenation to methanol via heterogeneous catalysis[J], Chem Rev, 120, 15, pp. 7984-8034, (2020)
  • [8] HU J T, YU L, DENG J, WANG Y, CHENG K, MA C, ZHANG Q H, WEN W, YU S S, PAN Y, YANG J Z, MA H, QI F, WANG Y JK, ZHENG Y P, CHEN M S, HUANG R, ZHANG S H, ZHAO Z C, MAO J, MENG X Y, JI Q Q, HOU G J, HAN X W, BAO X H, WANG Y, DENG D H., Sulfur vacancy-rich MoS<sub>2</sub> as a catalyst for the hydrogenation of CO<sub>2</sub> to methanol[J], Nat Catal, 4, 3, (2021)
  • [9] HAN Z, TANG C Z, WANG J J, LI L D, LI C., Atomically dispersed Pt<sup>n+</sup> species as highly active sites in Pt/In<sub>2</sub>O<sub>3</sub> catalysts for methanol synthesis from CO<sub>2</sub> hydrogenation[J], J Catal, 394, pp. 236-244, (2020)
  • [10] LI M J, TSANG E., Bimetallic catalysts for green methanol production via CO<sub>2</sub> and renewable hydrogen: A mini-review and prospects[J], Catal Sci Technol, 8, 14, pp. 3450-3464, (2018)