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Updated: Sep 25, 2025

Synthesis of Information-bearing Peptoids and their Sequence-directed Dynamic Covalent Self-assembly
Published on: February 6, 2020
Trimerization and cyclization of reactive P-functionalities confined within OCO pincers.
Beatrice L Chinen1, Jakub Hyvl1, Daniel F Brayton1
1Department of Chemistry, University of Hawai'i at Mānoa 2545 McCarthy Mall Honolulu HI 96822 USA mfcain@hawaii.edu.
Researchers explored OCO pincer ligands to stabilize a challenging 10-P-3 phosphorus species. While initial attempts led to unexpected cyclization products, a novel derivative was successfully synthesized and characterized.
Area of Science:
- Organometallic Chemistry
- Phosphorus Chemistry
- Ligand Design
Background:
- Stabilizing low-coordinate phosphorus species is crucial for understanding bonding and reactivity.
- Previous attempts using NCN pincer ligands to achieve a planarized 10-P-3 phosphorus center resulted in aromatic heterocycles.
- The 10-P-3 species with C2v symmetry and two lone pairs on phosphorus presents a significant synthetic challenge.
Purpose of the Study:
- To synthesize and stabilize a 10-P-3 phosphorus species with C2v symmetry.
- To investigate the efficacy of OCO pincer ligands in stabilizing the target phosphorus compound.
- To prevent the formation of aromatic phosphorus heterocycles through ligand design.
Main Methods:
- Synthesis of OCO pincer ligands 1 and 2.
- Metalation, phosphination, and reduction sequences.
- Characterization using NMR spectroscopy (including 19F NMR), elemental analysis, and X-ray crystallography.
- Computational simulation of NMR spectra.
Main Results:
- OCO pincer 1 led to cyclotriphosphane formation via trimerization.
- OCO pincer 2, despite CF3 groups, underwent unexpected cyclization to form monochlorinated phosphole 5.
- Derivative 6 was successfully synthesized from 5 and characterized, confirming the formation of a P-(p-Tol) species.
- Experimental 19F NMR spectra of 5 and 6 were accurately reproduced by simulations.
Conclusions:
- OCO pincer ligands show potential but require further optimization for stabilizing 10-P-3 species.
- The electron-withdrawing nature of oxygen donors and benzylic substituents influences the reactivity of the phosphorus center.
- Unexpected reaction pathways, such as cyclization and trimerization, highlight the complexity of low-coordinate phosphorus chemistry.
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