Semiclassical propagation of coherent states and wave packets: hidden saddles
Semiclassical methods are extremely important in the subjects of wave packet and coherent state dynamics. Unfortunately, these essentially saddle point approximations are considered nearly impossible to carry out in detail for systems with multiple degrees of freedom due to the difficulties of solvi...
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Published in | arXiv.org |
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Main Authors | , |
Format | Paper Journal Article |
Language | English |
Published |
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08.03.2022
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ISSN | 2331-8422 |
DOI | 10.48550/arxiv.2107.08799 |
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Abstract | Semiclassical methods are extremely important in the subjects of wave packet and coherent state dynamics. Unfortunately, these essentially saddle point approximations are considered nearly impossible to carry out in detail for systems with multiple degrees of freedom due to the difficulties of solving the resulting two-point boundary value problems. However, recent developments have extended the applicability to a broader range of systems and circumstances. The most important advances are first to generate a set of real reference trajectories using appropriately reduced dimensional spaces of initial conditions, and second to feed that set into a Newton-Raphson search scheme to locate the \(exposed\) complex saddle trajectories. The arguments for this approach were based mostly on intuition and numerical verification. In this paper, the methods are put on a firmer theoretical foundation and then extended to incorporate saddles \(hidden\) from Newton-Raphson searches initiated with real trajectories. This hidden class of saddles is relevant to tunneling-type processes, but a hidden saddle can sometimes contribute just as much as or more than an exposed one. The distinctions between hidden and exposed saddles clarifies the interpretation of what constitutes tunneling for wave packets and coherent states in the time domain. |
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AbstractList | Semiclassical methods are extremely important in the subjects of wave packet
and coherent state dynamics. Unfortunately, these essentially saddle point
approximations are considered nearly impossible to carry out in detail for
systems with multiple degrees of freedom due to the difficulties of solving the
resulting two-point boundary value problems. However, recent developments have
extended the applicability to a broader range of systems and circumstances. The
most important advances are first to generate a set of real reference
trajectories using appropriately reduced dimensional spaces of initial
conditions, and second to feed that set into a Newton-Raphson search scheme to
locate the $exposed$ complex saddle trajectories. The arguments for this
approach were based mostly on intuition and numerical verification. In this
paper, the methods are put on a firmer theoretical foundation and then extended
to incorporate saddles $hidden$ from Newton-Raphson searches initiated with
real trajectories. This hidden class of saddles is relevant to tunneling-type
processes, but a hidden saddle can sometimes contribute just as much as or more
than an exposed one. The distinctions between hidden and exposed saddles
clarifies the interpretation of what constitutes tunneling for wave packets and
coherent states in the time domain. Semiclassical methods are extremely important in the subjects of wave packet and coherent state dynamics. Unfortunately, these essentially saddle point approximations are considered nearly impossible to carry out in detail for systems with multiple degrees of freedom due to the difficulties of solving the resulting two-point boundary value problems. However, recent developments have extended the applicability to a broader range of systems and circumstances. The most important advances are first to generate a set of real reference trajectories using appropriately reduced dimensional spaces of initial conditions, and second to feed that set into a Newton-Raphson search scheme to locate the \(exposed\) complex saddle trajectories. The arguments for this approach were based mostly on intuition and numerical verification. In this paper, the methods are put on a firmer theoretical foundation and then extended to incorporate saddles \(hidden\) from Newton-Raphson searches initiated with real trajectories. This hidden class of saddles is relevant to tunneling-type processes, but a hidden saddle can sometimes contribute just as much as or more than an exposed one. The distinctions between hidden and exposed saddles clarifies the interpretation of what constitutes tunneling for wave packets and coherent states in the time domain. |
Author | Tomsovic, Steven Wang, Huichao |
Author_xml | – sequence: 1 givenname: Huichao surname: Wang fullname: Wang, Huichao – sequence: 2 givenname: Steven surname: Tomsovic fullname: Tomsovic, Steven |
BackLink | https://doi.org/10.1103/PhysRevE.105.054206$$DView published paper (Access to full text may be restricted) https://doi.org/10.48550/arXiv.2107.08799$$DView paper in arXiv |
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Snippet | Semiclassical methods are extremely important in the subjects of wave packet and coherent state dynamics. Unfortunately, these essentially saddle point... Semiclassical methods are extremely important in the subjects of wave packet and coherent state dynamics. Unfortunately, these essentially saddle point... |
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SubjectTerms | Boundary value problems Initial conditions Newton-Raphson method Physics - Computational Physics Physics - Quantum Physics Saddle points Saddles Wave packets Wave propagation |
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Title | Semiclassical propagation of coherent states and wave packets: hidden saddles |
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