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Controlled Amine-Borane Dehydropolymerization Enabled by Mechanistic Insight Using the Ir(tBu-POCOP)H2 Catalyst

  • Chloe M Van Beek
  • , M Arif Sajjad
  • , Joe C Goodall
  • , Catherine L Lyall
  • , John P Lowe
  • , Simon B Duckett
  • , J Scott McIndoe
  • , Charles Killeen
  • , Guy C Lloyd-Jones
  • , Ulrich Hintermair
  • , Stuart A Macgregor
  • , Richard E Douthwaite
  • , Andrew S Weller
  • University of York
  • University of St Andrews
  • Dynamic Reaction Monitoring Facility
  • University of Victoria
  • University of Edinburgh

Research output: Contribution to journalArticlepeer-review

Abstract

A detailed kinetic, mechanism, and operando speciation study on the controlled, catalytic, cascade-like dehydropolymerization of H 3B·NMeH 2 to form N-methyl polyaminoborane [H 2BNMeH] n ( Me-PAB) using Ir( tBu-POCOP)H 2 as a precatalyst is reported. Catalyst speciation, as monitored using online FlowNMR, shows the formation of a borohydride complex Ir( tBu-POCOP)(H)(BH 4) during an induction period, that rapidly speciates to Ir( tBu-POCOP)H 4 during productive turnover. Kinetic studies in the roles of NMeH 2, trace water, and [H 3B·NMeH 2] on the induction period, productive catalysis and speciation reveal a complex set of processes that provide a framework for numerical and computational (DFT) modeling. Collectively these combine to support a mechanism for the dehydrogenation of H 3B·NMeH 2 to form the actual monomer, H 2B═NMeH, that involves concerted B-H/N-H activation. By understanding the factors that control the maximum rate of dehydrogenation [ν (max)] and catalyst speciation, and deploying temperature variation and amine additives, a wide-range of Me-PAB molecular weights ( M n = 35,000-191,200 g·mol -1) can be achieved; in addition to low catalyst loadings (21 ppm), multigram scales (16 g) and water/air tolerance. The development of such systems which operate to selectively produce Me-PAB, using as-supplied substrates and simple catalysts, that also work on a scale useful for materials testing, promotes the wider exploitation of Me-PAB as a general preceramic precursor to hex-boron nitride.

Original languageEnglish
Pages (from-to)29669–29683
Number of pages15
JournalJournal of the American Chemical Society
Volume148
Issue number28
Early online date6 Jul 2026
DOIs
Publication statusPublished - 22 Jul 2026

Acknowledgements

Professor Antoine Buchard (University of York), Brett Bosely and Dr. Beth Bosely (Boron Specialties) for useful discussions, Dr. Chloe Johnson (University of York) for assistance with the air-tolerance studies. The reviewers are thanked for their careful reading of the manuscript and constructive criticism.

Funding

Royal Society for a University Research Fellowship to UH (UF160458); EPSRC for Dynamic Reaction Monitoring Facility at the University of Bath (EP/P001475/1), Programme Grant “Boron: Beyond the Reagent” (EP/W007517/1), DTP studentships (CVB, JCG), EP/W015498/2, EP/Y014731/1; and the ERC (PRECISION SMOM, Project Number 101198896, HORIZON-ERC, ERC-2024-ADG).

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