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PTL
À propos de cette revue
Description de la revue
Equipe éditoriale

La physique demain  Theoretical Physics Letters (TPL) Une revue mensuelle indexée par le SCI et évaluée trois fois par des pairs.

 

Physics Tomorrow Theoretical Physics Letters TPL est une revue internationale à trois revues qui publie de nouvelles recherches et des articles de synthèse sur toutes les dimensions de la physique. Le facteur d'impact actuel est de 1,4 selon la mise à jour de 2019.

examen physique a, lettres de physique appliquée.

Déclaration de politique éditoriale

Indexage

Indexed within Scopus, SCIE (Web of Science), CAPlus / SciFinder, Inspec, and many other databases.

Libre accès

Free for readers, with article processing charges (APC) paid by authors or their institutions.

Table des matières
Pour les auteurs

Publication rapide

Directives de soumission

Manuscripts are peer-reviewed and a first decision provided to authors approximately 21 days after submission; acceptance to publication is undertaken in 8-10 days post first decision.

Reconnaissance

Reviewers who provide timely, thorough peer-review reports receive vouchers entitling them to a discount on the APC of their next publication in any Physics Tomorrow Letters, in appreciation of the work done.

Formatage du manuscrit

Facteur d'impact

3.56 (2022) ; 7-Year Impact Factor: 4.16 (2024 running month)

Dépliant de journal

Flyer.pdf
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Mot de l'éditeur. |

 

TPL est ouvert  accédez à une revue internationale qui couvre les tendances récentes de la physique théorique, expérimentale et observationnelle. Cela vise à fournir une grande opportunité  aux principaux chercheurs du monde entier pour avoir publié leurs  œuvres de valeur moyennant des honoraires minimaux. Parce que je crois que les bonnes idées n'ont pas de prix.

Soumettez votre article à ptlsubmission@gmail.com

OU cliquez ici pour soumettre

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The Nature of the 1 MeV-Gamma quantum in a Classic Interpretation of the Quantum Potential

By considering wave-particle dualism with an interpretation of the squared amplitude of the wave function R2(Y) compatible with the known Bohm’s equations, for a 1 MeV-gamma-quantum considered as ‘gammonic’ (e-e+)- pair of electrons having the phase speed of the associated wave equal to the group speed of passing through a low frictional component of the quantum vacuum, it results a value of the quantum potential Q equal to the particle’s kinetic energy, Qc = ½mv2 , for a classic model of electron composed by heavy photons, this value being explained by a generalized relation of quantum equilibrium of de Broglie type, with the associated entropy proportional to its action S, as representing a centrifugal potential given by a spinorial mass ms = nvmv » me resulting by nv -vector photons explaining also a half of the electron’s rest energy by considering and a dynamic component of the quantum vacuum- given by quantum and sub-quantum winds ............
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Dirac-Majorana neutrino type conversion induced by an oscillating scalar dark matter

Some properties of a neutrino may differ significantly depending on whether it is Dirac or Majorana type. The type is determined by the relative size of Dirac and Majorana masses, which may vary if they arise from an oscillating scalar dark matter.
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Calculation of the Hubble Constant, the Minimum Mass, and the Proton Charge Radius Using the Dirac’s Hypothesis on the Ratio of the Electrostatic Force to the Gravitational Force

This publication suggests that some physical values could be calculated using the Dirac’s hypothesis on the observed ratio of the electrostatic force to the gravitational force. The calculated value of the Hubble constant is H ≈ 72.013 km s‑1 Mpc‑1 and that of the minimum mass, Mmin ≈ 1.720 6 × 10‑68 kg. Recent observations suggest that the proton charge radius could also be calculated using an additional but related assumption: rp ≈ 0.826 4 fm.

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Total submitted and accepted manuscript ratio in current month.

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