Abstract
Phosphinidenes are transient species that have contributed significantly to synthetic chemistry, coordination chemistry, and astrochemistry. Herein, the multistate complete active space second-order perturbation theory (MS-CASPT2) method has been employed to investigate the photochemical generation of ethynylphosphinidene (HCCP) from phosphapropyne (CH3CP). Our results show that upon photoexcitation, CH3CP undergoes sequential hydrogen atom transfers along the C─C─P backbone to form ethynylphosphine (CHCPH2), a reaction that proceeds sequentially through the 1-phosphaallene (CH2CPH) and 1H-phosphirene (cyc-HCC(H)PH) isomers and ultimately yields HCCP and H2 via dehydrogenation. Moreover, the studied photoinduced processes are kinetically accessible, with the highest energy barrier being only 0.56 eV, which can be overcome by the sufficient energy of the 254 nm excitation light. Importantly, our calculations have located several key intersection points between S1 and S0 states or between S0 and T1 states, which are involved and facilitated this photochemical process. These theoretical results not only elucidate the experimental observations (Lawzer et al., Angewandte Chemie International Edition 60 (2021): 6400–6402) but also provide a framework for advancing the mechanistic understanding of phosphorus photochemistry and elucidating the formation pathways of interstellar phosphorus-containing molecules.
| Original language | English |
|---|---|
| Article number | e70526 |
| Journal | ChemPhysChem |
| Volume | 27 |
| Issue number | 15 |
| DOIs | |
| Publication status | Published - 14 Aug 2026 |
| Externally published | Yes |
Keywords
- ethynylphosphinidene
- excited state
- phosphapropyne
- reaction mechanism
- theoretical study
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