Acta Phys. -Chim. Sin. ›› 2026, Vol. 42 ›› Issue (7): 100212.doi: 10.1016/j.actphy.2025.100212
• ARTICLE • Previous Articles Next Articles
Ying Wang, Mingcheng Yang, Zhu Yin, Yingqi Wang, Jiajia Cheng*(
)
Received:2025-09-15
Revised:2025-10-26
Accepted:2025-10-26
Published:2026-05-22
Contact:
Email: jjcheng@fzu.edu.cn (Jiajia Cheng)
Ying Wang, Mingcheng Yang, Zhu Yin, Yingqi Wang, Jiajia Cheng. Transition metal-free poly(heptazine imide) photocatalyst for C–X bond construction from katritzky salts[J]. Acta Phys. -Chim. Sin. 2026, 42(7), 100212. doi: 10.1016/j.actphy.2025.100212
Fig 2
Photocatalytic performance of PHI photocatalysts in deaminative coupling reactions. (a) Comparative catalytic performance of g-CN-U, PHI-K, and PHI-K-alk in the model reaction between cyclohexyl Katritzky salt 1a and stilbene 2a. (b) Performance comparison of PHI-K-alk with other heterogeneous photocatalysts. (c) Control experiments. (d) Wavelength-dependent reactivity of the reaction."
Fig 3
Mechanistic investigation of PHI-K-alk catalyst in the photocatalytic deaminative C–C coupling. (a) Reaction time profile and TEMPO radical trapping experiment over PHI-K-alk under the standard conditions, (b) Light on-off experiments, (c) Fluorescence quenching studies carried out by adding DABCO and Katritzky salt, (d) Possible reaction pathway for the reaction."
Fig 5
Catalyst-substrate interaction studies at the molecular level. (a) FT-IR spectra, (b) DRS spectra, (c) PL spectra, and (d) 11B NMR spectra of catalysts before and after ion exchange. (e) In situ IR spectroscopy of PHI-K-alk and substrate revealing significant shifts in N–K bonds upon 450 nm light illumination. (f) The energy change of the LUMO orbital of the catalyst before and after the addition of substrate 1a. (g) Schematic illustration of the proposed mechanism for the reaction."
Fig 7
Synthetic applications of PHI-K-alk photocatalyst in deaminative coupling reactions. Reaction conditions: 1 (0.12 mmol), 2 (0.10 mmol), DABCO (0.12 mmol) and 10 mg PHI-K-alk in MeCN (1 mL) under N2 at room temperature for 48 h with a 3 W 450 nm LED. The yield refers to the isolated yield."
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