Chemical bonding concepts emerge naturally from maximally entangled atomic orbitals
arXiv:2501.15699 · doi:10.1038/s41467-026-73527-w
Abstract
Chemical bonding is a nonlocal phenomenon that binds atoms into molecules. Its ubiquitous presence in chemistry, however, stands in stark contrast to its ambiguous definition and the lack of a universal perspective for its understanding. In this work, we rationalize and characterize chemical bonding through the lens of an equally nonlocal concept from quantum information, the orbital entanglement. We introduce maximally entangled atomic orbitals (MEAOs) whose entanglement pattern is shown to recover both Lewis (two-center) and beyond-Lewis (multicenter) structures, with multipartite entanglement serving as a comprehensive index of bond strength. Our unifying framework for bonding analyses is effective not only for equilibrium geometries but also for transition states in chemical reactions and complex phenomena such as aromaticity. It also has the potential to elevate the Hilbert space atomic partitioning to match the prevalent real-space partitioning in the theory of atoms in molecules. Accordingly, our work provides a new framework for understanding fuzzy chemical concepts using rigorous, quantitative descriptors from quantum information.
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References in corpus (7)
- On the quantum, classical and total amount of correlations in a quantum state
- Measure of genuine multipartite entanglement with computable lower bounds
- Block2: a comprehensive open source framework to develop and apply state-of-the-art DMRG algorithms in electronic structure and beyond
- Corresponding Active Orbital Spaces along Chemical Reaction Paths
- Quantum Information-Assisted Complete Active Space Optimization (QICAS)
- Quantum correlations in molecules: from quantum resourcing to chemical bonding
- Unveiling Intrinsic Many-Body Complexity by Compressing Single-Body Triviality