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Preparation of an ion with the highest calculated proton affinity: ortho-diethynylbenzene dianion

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posted on 2024-11-16, 07:24 authored by Berwyck Poad, Nicholas D Reed, Christopher Hansen, Adam TrevittAdam Trevitt, Stephen Blanksby, Emily G Mackay, Michael S Sherburn, Bun Chan, Leo Radom
Owing to the increased proton affinity that results from additional negative charges, multiply-charged anions have been proposed as one route to prepare and access a range of new and powerful "superbases". Paradoxically, while the additional electrons in polyanions increase basicity they serve to diminish the electron binding energy and thus, it had been thought, hinder experimental synthesis. We report the synthesis and isolation of the ortho-diethynylbenzene dianion (ortho-DEB2−) and present observations of this novel species undergoing gas-phase proton-abstraction reactions. Using a theoretical model based on Marcus-Hush theory, we attribute the stability of ortho-DEB2− to the presence of a barrier that prevents spontaneous electron detachment. The proton affinity of 1843 kJ mol−1 calculated for this dianion superbase using high-level quantum chemistry calculations significantly exceeds that of the lithium monoxide anion, the most basic system previously prepared. The ortho-diethynylbenzene dianion is therefore the strongest base that has been experimentally observed to date.

Funding

Unravelling the intrinsic structure and stability of multiply charged anions in the gas-phase using photoelectron spectroscopy and mass spectrometry

Australian Research Council

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ARC Centre of Excellence - Centre for Free Radical Chemistry and Biotechnology

Australian Research Council

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History

Citation

Poad, B. L. J., Reed, N. D., Hansen, C., Trevitt, A. J., Blanksby, S. J., Mackay, E. G., Sherburn, M. S., Chan, B. & Radom, L. (2016). Preparation of an ion with the highest calculated proton affinity: ortho-diethynylbenzene dianion. Chemical Science, 7 (9), 6245-6250.

Journal title

Chemical Science

Volume

7

Issue

9

Pagination

6245-6250

Language

English

RIS ID

109317

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