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Jaime Martín

@jaimechem.bsky.social
53 followers 39 following 5 posts

Research Chemist. Postdoc at the University of Zurich

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Reposted by Jaime Martín
Boron Chemistry @boron-chemistry.bsky.social · 13/08/2026
Boron-to-gold transmetalation: a useful platform for gold(iii) cyclometalation ( @chemicalscience.rsc.org ): pubs.rsc.org/sc/article/d... ( @dorianechauvin , @jaimechem.bsky.social , @NevadoLab ).
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Jaime Martín @jaimechem.bsky.social · 13/08/2026
✨Check out our new paper! tinyurl.com/5n6d3kd4 We present a general strategy for the synthesis of mono- and biscyclometalated Au(III) complexes through late-stage ligand functionalization and boron-to-gold transmetalation. Congrats to Doriane and the team from Nevado and Ribas labs! @chem.uzh.ch
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Jaime Martín @jaimechem.bsky.social · 21/07/2026
Excited to share that the main project of my postdoc at @chem.uzh.ch has been published in Nature Chemistry! We captured an elusive aura-nitrene and uncovered its reactivity, expanding gold’s potential for nitrogen atom-transfer.✨Read it here:
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Reposted by Jaime Martín
Nature Chemistry @natchem.nature.com · 21/07/2026
A gold nitrene for nitrogen-atom transfer chemistry #chemsky
dlvr.it
A gold nitrene for nitrogen-atom transfer chemistry
Nature Chemistry, Published online: 21 July 2026; doi:10.1038/s41557-026-02216-4An elusive aura-nitrene has been captured in crystallo by the photochemical extrusion of N2 from a gold(III) azide complex. Computational investigations confirm a triplet ground state and its reactivity with O2, CO, aldehydes and alkynes establish gold as a viable platform for nitrene atom-transfer chemistry.
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Jaime Martín @jaimechem.bsky.social · 07/09/2025
Check out our new work synthesizing (P^N^C)Gold(III) complexes, creating two new Au-C bonds in one pot! @chem.uzh.ch
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Reposted by Jaime Martín
ACS Publications @pubs.acs.org · 07/09/2025
'Synthesis of (P^N^C)Gold(III) Complexes via Tandem Oxidative Addition/C–H Auration' from ACS Organic & Inorganic Au is an open access #ACSEditorsChoice. 📖 Read the article: buff.ly/2UUBEnb
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Jaime Martín @jaimechem.bsky.social · 11/07/2025
Fantastic two weeks of science! Very happy to have participated at the Bienal @rseq-quimica.bsky.social and @eucomc2025.bsky.social sharing our advances in gold(III) chemistry, made at the @chem-uzh-ch.bsky.social. Thanks to the organisers for these great opportunities! @swisschemistry.bsky.social
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Reposted by Jaime Martín
Carole Duboc @caroleduboc.bsky.social · 04/03/2025
Congrats for this nice work now available in @jacsau.bsky.social by the group of Cristina Nevado Interrogating the anti-Insertion of Alkynes into Gold(III) | JACS Au pubs.acs.org/doi/10.1021/...
pubs.acs.org
Interrogating the anti-Insertion of Alkynes into Gold(III)
Alkyne hydrofunctionalizations are a powerful strategy to efficiently build up structural complexity. The selectivity of these reactions is typically governed by the interaction between the alkyne and...
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Jaime Martín @jaimechem.bsky.social · 28/02/2025
My first post here comes with my latest work at the University of Zurich: Interrogating the anti-Insertion of Alkynes into Gold(III)! We explore the complex mechanism behind this apparently simple two-component reaction. Check it out in JACS Au pubs.acs.org/doi/10.1021/... @uzhchemistry.bsky.social
pubs.acs.org
Interrogating the anti-Insertion of Alkynes into Gold(III)
Alkyne hydrofunctionalizations are a powerful strategy to efficiently build up structural complexity. The selectivity of these reactions is typically governed by the interaction between the alkyne and a metal-hydride, which commonly proceeds via a well-understood syn-insertion mechanism. In contrast, anti-insertions are far less common, with proposed mechanisms often extrapolated from literature precedents rather than grounded in direct experimental evidence. While gold complexes rank among the most efficient catalysts for such transformations, the mechanistic understanding of the key alkyne insertion step remains incomplete. In this study, we demonstrate that stable gold(III)-hydrides, featuring a (P∧N∧C) ligand, undergo selective insertion of alkynes to yield the corresponding anti-Markovnikov Z-vinyl complexes. A combination of control experiments, kinetic studies, and computational analyses reveals a nonradical, bimolecular insertion process, in which water plays a pivotal role by accelerating the reaction and potentially stabilizing a highly reactive, T-shaped gold(I) intermediate. Notably, this is the first demonstration of the insertion of both activated and unactivated terminal and internal alkynes into a gold(III)-hydride complex.
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