Quantum coherence enfeebled by classical uncertainties

The fundamental indication of the departure of quantum mechanics from the classical world is the so-called quantum coherence. Typically, we define it as the characteristic of systems which are in a superposition of states yielding interference patterns in certain kinds of experiments. In addition to...

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Main Authors: R. O. Barrachina, F. Navarrete, M. F. Ciappina
Format: Article
Language:English
Published: American Physical Society 2020-12-01
Series:Physical Review Research
Online Access:http://doi.org/10.1103/PhysRevResearch.2.043353
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author R. O. Barrachina
F. Navarrete
M. F. Ciappina
author_facet R. O. Barrachina
F. Navarrete
M. F. Ciappina
author_sort R. O. Barrachina
collection DOAJ
description The fundamental indication of the departure of quantum mechanics from the classical world is the so-called quantum coherence. Typically, we define it as the characteristic of systems which are in a superposition of states yielding interference patterns in certain kinds of experiments. In addition to its captivating philosophical implications, quantum coherence turned out to be a valuable tool in different areas, ranging from quantum information to biology, where it was used to describe several fundamental processes. Here, we go one step further to study how classical uncertainties in a mixture of similar states reduce quantum coherence in quantum scattering theory. To this end, we deal with different examples, all of them with roots in the widely studied Feynman's two-slit thought experiment. We finally propose an operational and intuitive definition of the concept of coherence length whose implications largely transcend the simplicity of the corresponding mathematical development, as it is demonstrated when applied to the analysis of some recent atomic and molecular processes.
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spelling doaj.art-5b2bbd9e5535497d9f36d7ffe9cebb9a2024-04-12T17:05:06ZengAmerican Physical SocietyPhysical Review Research2643-15642020-12-012404335310.1103/PhysRevResearch.2.043353Quantum coherence enfeebled by classical uncertaintiesR. O. BarrachinaF. NavarreteM. F. CiappinaThe fundamental indication of the departure of quantum mechanics from the classical world is the so-called quantum coherence. Typically, we define it as the characteristic of systems which are in a superposition of states yielding interference patterns in certain kinds of experiments. In addition to its captivating philosophical implications, quantum coherence turned out to be a valuable tool in different areas, ranging from quantum information to biology, where it was used to describe several fundamental processes. Here, we go one step further to study how classical uncertainties in a mixture of similar states reduce quantum coherence in quantum scattering theory. To this end, we deal with different examples, all of them with roots in the widely studied Feynman's two-slit thought experiment. We finally propose an operational and intuitive definition of the concept of coherence length whose implications largely transcend the simplicity of the corresponding mathematical development, as it is demonstrated when applied to the analysis of some recent atomic and molecular processes.http://doi.org/10.1103/PhysRevResearch.2.043353
spellingShingle R. O. Barrachina
F. Navarrete
M. F. Ciappina
Quantum coherence enfeebled by classical uncertainties
Physical Review Research
title Quantum coherence enfeebled by classical uncertainties
title_full Quantum coherence enfeebled by classical uncertainties
title_fullStr Quantum coherence enfeebled by classical uncertainties
title_full_unstemmed Quantum coherence enfeebled by classical uncertainties
title_short Quantum coherence enfeebled by classical uncertainties
title_sort quantum coherence enfeebled by classical uncertainties
url http://doi.org/10.1103/PhysRevResearch.2.043353
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