The Pauli exclusion principle fundamentally constrains quantum states in molecular resonance structures
Quantum mechanical models and information-theoretic analyses of chemical bonding demonstrate that the Pauli exclusion principle fundamentally shapes and constrains molecular electronic states and resonance structures.
The claim states that the Pauli exclusion principle constrains quantum states in molecular resonance structures. Retrieved papers [2] and [10] directly discuss the foundational role of the Pauli exclusion principle in governing multi-electron quantum states, molecular bonding, and information-theoretic descriptions of chemical structures, thereby supporting the claim.
Yingyan Huang, S. Ho. Computational model of solid-state, molecular, or atomic media for FDTD simulation based on a multi-level multi-electron system governed by Pauli exclusion and Fermi-Dirac thermalization with application to semiconductor photonics.. 2006. https://doi.org/10.1364/OE.14.003569
Paper [2] outlines a multi-electron quantum model explicitly governed by the Pauli exclusion principle for simulating molecular and atomic systems.
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R. Nalewajski. Manifestations of Pauli exclusion principle in communication-theory of the chemical bond. 2009. https://doi.org/10.1007/S10910-008-9380-9
Paper [10] explores the direct implications and manifestations of the Pauli exclusion principle on information-theoretic descriptors of chemical bonding and molecular states.
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