Bohmian pathways into chemistry: A brief overview
A. S. Sanz

TL;DR
This paper provides an overview of how Bohmian mechanics has increasingly been applied in theoretical chemistry, offering new insights and computational techniques for analyzing molecular systems without relying on classical-quantum correspondence.
Contribution
It offers a comprehensive overview of Bohmian mechanics applications in chemistry, highlighting its evolution and diverse uses in electronic structure, molecular dynamics, and statistical mechanics.
Findings
Bohmian trajectories help interpret chemical phenomena without quantum-classical correspondence.
Applications include new computational propagation techniques and analysis of chemical system evolution.
Bohmian mechanics has permeated multiple traditional pathways in theoretical chemistry.
Abstract
Perhaps because of the popularity that trajectory-based methodologies have always had in Chemistry and the important role they have played, Bohmian mechanics has been increasingly accepted within this community, particularly in those areas of the theoretical chemistry based on quantum mechanics, e.g., quantum chemistry, chemical physics, or physical chemistry. From a historical perspective, this evolution is remarkably interesting, particularly when the scarce applications of Madelung's former hydrodynamical formulation, dating back to the late 1960s and the 1970s, are compared with the many different applications available at present. As also happens with classical methodologies, Bohmian trajectories are essentially used to described and analyze the evolution of chemical systems, to design and implement new computational propagation techniques, or a combination of both. In the first…
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Taxonomy
TopicsQuantum Mechanics and Applications · Molecular spectroscopy and chirality · Complex Network Analysis Techniques
