Chinese Journal of Catalysis ›› 2026, Vol. 88: 369-381.DOI: 10.1016/S1872-2067(26)65140-6
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Xinyi Zhanga, Weichen Dongb, Yi Caoc, Caixia Zhoub,*(
), Jiaxiu Guoa, Hailong Zhanga,*(
)
Received:2026-01-07
Accepted:2026-02-27
Online:2026-09-18
Published:2026-09-05
Supported by:Xinyi Zhang, Weichen Dong, Yi Cao, Caixia Zhou, Jiaxiu Guo, Hailong Zhang. Efficient continuous synthesis of methanol by direct methane conversion on Cu-KFI zeolite catalysts[J]. Chinese Journal of Catalysis, 2026, 88: 369-381.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)65140-6
Fig. 1. (a) Continuous DMTM on 0.5%Cu-KFI zeolite (actual Cu loading = 0.34 wt%) upon elevating reaction temperatures from 300 to 600 °C. Bars and orange stars refer to the STY of products (mmol/molCu/h) and methanol selectivity (%), respectively. (b) The methanol yield and selectivity of Cu-KFI samples as a function of copper loading. Reaction conditions: 100 mg catalyst, total flow rate of 50 mL/min; 80% CH4, 500 ppm O2, 4.2% H2O and Ar balance. (c) Methanol yield (mmol/molCu/h) and selectivity (%) of 0.5%Cu-KFI and 1%Cu-KFI samples in continuous DMTM with different water contents. Reaction conditions: 100 mg catalyst, total flow rate = 50 mL/min; 80 % CH4, 500 ppm O2, 4.2% or 12.2% H2O; reaction temperature = 550 °C. (d) The yields of COx and H2 products in (c) reaction systems. (e) Continuous DMTM over Cu-KFI zeolites with different Cu loadings. Reaction conditions: 80% CH4, 4.2% H2O and 100-10000 ppm O2, reaction temperature of 450 °C.
Fig. 2. Catalytic stability of 0.5%Cu-KFI catalyst in continuous DMTM. Reaction conditions: 100 mg catalyst, total flow rate = 50 mL/min; 80% CH4, 1000 ppm O2, 12.2% H2O; reaction temperature = 500 °C. Note: No regeneration treatments were performed after leaving the reaction for 15 d.
Fig. 3. (a) Temperature-programmed surface reactions (TPSR) of continuous DMTM on 0.5%Cu-KFI with isotopically labelled system of CH4 + H218O + O2. Reaction conditions: 100 mg catalyst, total flow rate = 50 mL/min; 80% CH4, 4.2% H218O, 500 ppm O2, Ar as the balance. (b) The ratio of dihydrogen to methanol in continuous DMTM over 0.5%Cu-KFI zeolite at different reaction temperatures. Reaction conditions: 100 mg catalyst, total flow rate = 50 mL/min; 80% CH4, 4.2% H2O, 500 ppm O2. (c) The product yields in continuous DMTM reaction over Cu-KFI zeolites. Reaction conditions: 80% CH4, 4.2% H2O, 100-10000 O2, reaction temperature of 450 °C. (d) The ratio of dihydrogen to methanol in continuous DMTM over 0.5%Cu-KFI zeolite under the reaction conditions of (c).
Fig. 4. The representative HAADF-STEM images of 0.5%Cu-KFI (a-c) and 1%Cu-KFI (d-f) samples. (c) and (f) energy distribution maps obtained through image-matrix transformation for the red boxes in (b) and (e). (g) Element mappings of Cu, O and Al in 1%Cu-KFI.
Fig. 5. (a) 29Si MAS NMR spectrum of the as-prepared KFI zeolite. EPR results (b), UV-Vis spectra (c) and H2-TPR results (d) of Cu-KFI zeolites with different Cu loadings. (e) FTIR spectra of Cu-KFI zeolites using KFI zeolite as the background. (f) In-situ FTIR spectra of Cu-KFI zeolites for NO adsorption at 30 °C.
Fig. 6. (a) The selectivities of methanol and COx as a function of Cu loadings on KFI and CHA [37] zeolites. (b) The structure of KFI zeolite and the size of ring windows.
Fig. 7. The energy diagram for the reaction path of methane-steam to methanol on [Cu-OH]+ and hydrated [Cu(OH2)-OH]+ active sites hosted on 6MR in KFI zeolite.
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