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Computational Exploration of Ambiphilic Reactivity of Azides and Sustmann’s Paradigmatic Parabola
Author(s) -
PanPan Chen,
Pengchen Ma,
He Xue,
Dennis Svatunek,
Fang Liu,
K. N. Houk
Publication year - 2021
Publication title -
the journal of organic chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.2
H-Index - 228
eISSN - 1520-6904
pISSN - 0022-3263
DOI - 10.1021/acs.joc.1c00239
Subject(s) - reactivity (psychology) , cycloaddition , chemistry , parabola , bioorthogonal chemistry , computational chemistry , azide , combinatorial chemistry , click chemistry , physics , organic chemistry , catalysis , medicine , alternative medicine , pathology , optics
We examine the theoretical underpinnings of the seminal discoveries by Reiner Sustmann about the ambiphilic nature of Huisgen's phenyl azide cycloadditions. Density functional calculations with ωB97X-D and B2PLYP-D3 reproduce the experimental data and provide insights into ambiphilic control of reactivity. Distortion/interaction-activation strain and energy decomposition analyses show why Sustmann's use of dipolarophile ionization potential is such a powerful predictor of reactivity. We add to Sustmann's data set several modern distortion-accelerated dipolarophiles used in bioorthogonal chemistry to show how these fit into the orbital energy criteria that are often used to understand cycloaddition reactivity. We show why such a simple indicator of reactivity is a powerful predictor of reaction rates that are actually controlled by a combination of distortion energies, charge transfer, closed-shell repulsion, polarization, and electrostatic effects.

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