Relativistic collapse of the classical triple bond in the CBi<sup>-</sup> molecular ion.

Kahraman, Deniz; Hui, Jie; Zhang, Xin-Yu; Ellis, Neil A; Choi, Hyun Wook; Peterson, Kirk A; Wang, Lai-Sheng · Science · 2026

basic_science · Level V

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Abstract

The conventional framework for chemical bonding between main-group elements involves separate σ and π orbitals to describe multiple bonds. However, relativistic effects mix these orbitals in molecules containing heavy elements through spin-orbit coupling, leaving the total angular-momentum projection (ω) as the only good quantum number. Direct experimental evidence that relativistic effects change the σ-π bonding framework has remained elusive. Here, we probe the carbon-bismuth triple bond in the CBi<sup>-</sup> anion using high-resolution cryogenic photoelectron spectroscopy, coupled with relativistic four-component Dirac-Coulomb coupled-cluster calculations. Even though the CBi<sup>-</sup> anion is isovalent to the well-known CN<sup>-</sup> species, we demonstrate that the traditional σ + 2π triple-bond picture collapses into a pure π-like |ω| = 3/2 and two |ω| = 1/2 Kramers pairs containing substantial σ/π mixing.