Chinese Journal of Catalysis ›› 2026, Vol. 88: 516-527.DOI: 10.1016/S1872-2067(26)65128-5
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Sen Fenga,b,1, Cunyao Lib,c,1, Benhan Fanb,c, Guangjun Jib,c, Hong Weia,b, Xinyuan Liub,c, Yang Zhaob,c, Miao Jiangb,c, Li Yanb,c,*(
), Qiang Zhoud,*(
), Yunjie Dinga,b,e,*(
)
Received:2026-02-20
Accepted:2026-04-13
Online:2026-09-18
Published:2026-09-05
About author:First author contact: 共同第一作者.Supported by:Sen Feng, Cunyao Li, Benhan Fan, Guangjun Ji, Hong Wei, Xinyuan Liu, Yang Zhao, Miao Jiang, Li Yan, Qiang Zhou, Yunjie Ding. Construction of a P/S dual-atom coordinated Co heterogeneous mononuclear complex catalyst for hydroformylation[J]. Chinese Journal of Catalysis, 2026, 88: 516-527.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)65128-5
Fig. 1. (a) Preparation procedure of Co1/POPs-PPh3-5P&2S catalysts. (b,c) Atomic-resolution HAADF-STEM image. STEM image (d,e) and corresponding elemental mapping images (f-i) of Co1/POPs-PPh3-5P&2S catalyst before scanning (d); catalyst after scanning (e).
Fig. 2. (a) The 13C MAS NMR spectra of POPs-PPh3-P&S. (b) The 31P MAS NMR spectra of POPs-PPh3-P&S. (c) The TGA curves of POPs-PPh3-P&S. (d) Comparison of pore volume and specific surface area of POPs-PPh3-P&S s. (e)The nitrogen physical adsorption curves of POPs-PPh3-P&S. (f) The pore distribution curves of POPs-PPh3-P&S.
Fig. 3. XPS Characterization. (a) Co 2p of Co1/POPs-PPh3-P&S. (b) S 2p of POPs-PPh3-5P&2S. (c) S 2p of Co1/POPs-PPh3-5P&2S. (d) Co K-edge Fourier transform spectra of EXAFS. (e) Co K-edge XANES spectra. (f) Co K-edge WT-EXAFS contour plots of different samples. (g) In-situ FT-IR spectra of Co1/POPs-PPh3-5P&2S and Co1/POPs treated under syngas (CO:H2 = 1:1) at 110 °C. (h) In-situ FT-IR spectra of Co1/POPs-PPh3-5P&2S treated with syngas for 30 min and then purged with N2 for 60 min.
Fig. 4. TOF-SIMS of Co1/POPs-PPh3-5P&2S. This experiment was conducted using an ION-TOF GmbH M6. The ion images of various components were obtained on the area of 200 um x 200 um by using a 60 keV Bi3++ primary ion beam.
Fig. 5. (a) Chemical formula for 2,5-DHF hydroformylation (Abbreviations: 3-FT is 3-Formyl-THF; THFA is tetrahydrofurfuryl alcohol; THF is tetrahydrofuran). (b) Evaluation of sample for 2,5-DHF hydroformylation. Standard conditions: S/C = 200, 0.1 g catalyst (Co loading at 2.5%), toluene 5g, 2.5-DHF 0.59 g, 30 h, 120 °C, 6MPa, syngas: CO:H2 = 1:1. (c) Comparison of 2,5-dihydrofuran hydroformylation performance [12,13,17]. The effects of pressure (d), temperature (e), and stability test (f) of Co1/POPs-PPh3-5P&2S in hydroformylation of 2,5-DHF.
Fig. 6. (a) Adsorption energy barrier difference between 2,3-DHF and 2,5-DHF on different catalysts: Co1/POPs-PPh3-5P&2S (top) Co1/POPs-PPh3 (bottom). (b) Proposed catalytic cycle mechanism of HCo(PPh3)2S species in hydroformylation of 2,5-DHF. (c) The energy barrier between the transition states of Co1/POPs-PPh3-5P&2S during the catalytic cycle.
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