Chinese Journal of Catalysis ›› 2026, Vol. 88: 442-456.DOI: 10.1016/S1872-2067(26)65132-7
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Dongpo Li1, Qianqian Mao1, Chao Xiong*(
), Luying Xi, Yu Nie, Xiaotian Xu, Hongbing Ji*(
)
Received:2025-12-20
Accepted:2026-02-23
Online:2026-09-18
Published:2026-09-05
About author:First author contact: 共同第一作者.Supported by:Dongpo Li, Qianqian Mao, Chao Xiong, Luying Xi, Yu Nie, Xiaotian Xu, Hongbing Ji. Constructing Ru-porphyrin COF for catalyzing air oxidation of adamantane C-H bonds to relay olefin epoxidation[J]. Chinese Journal of Catalysis, 2026, 88: 442-456.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)65132-7
Fig. 1. Preparation and characterization of the catalyst. (a) Synthetic diagram of Ru-COF-TPD. (b) XRD spectra of Ru-COF-TPD. (c) FT-IR spectra of Ru-COF-TPD. (d) 13C-SSNMR spectrum of Ru-COF-TPD, (e) N2 adsorption-desorption isotherms (inset: pore size distribution) of Ru-COF-TPD. (f) TGA/DTG curve.
Fig. 4. The catalytic performance of the Ru-COF-TPD in 1-butylene epoxidation. (a) Effect of different metals. (b) Different solvents. (c) Catalyst dosage. (d) Reaction temperature. (e) Reaction time. (f) Air usage.
Fig. 5. (a) Thermodynamic linear fitting of 1-butylene epoxidation system via Van’t Hoof equation. Catalytic kinetic studies via the fitting of linear zero-order (b), linear pseudo-first-order (c), and linear pseudo-second-order (d).
Fig. 6. The catalytic performance of Ru-COF-TPD for various olefins. a Conditions: olefins amount (8 mmol), Ru-COF-TPD (10 mg), adamantane (20 mmol), ACN (20 mL), reaction time (8 h), reaction temperature (125 °C) and biphenyl (50 mg). b 6 h. c 115 °C. d 115 °C, 6 h.
Fig. 7. FT-IR spectra (a), 13C-SSNMR spectrum (b), and N2 adsorption-desorption isotherms (c) the catalyst before and after the epoxidation reaction. XPS core-level spectra of C 1s and Ru 3d (d), Ru 3p (e), and N 1s (f) for Ru-COF-TPD after the epoxidation reaction.
Fig. 9. (a) ESR spectra under different conditions by using DMPO as the free-radical spin trapping agent. ESR spectra under different conditions with different times: standard condition (b), no 1-butylene (c), no catalyst (d) and no adamantane (e). (f) High-resolution ESR simulation analysis of the peroxy radical.
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