Progress in Physics of Applied Materials

Progress in Physics of Applied Materials

Number of Volumes 7
Number of Issues 15
Number of Articles 153
Number of Contributors 387
Article View 81,219
PDF Download 81,951
View Per Article 530.84
PDF Download Per Article 535.63
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Time to Accept (Days) 61
Number of Indexing Databases 12
Number of Reviewers 544

The Progress in Physics of Applied Materials is an open access journal that published biannual(Quarterly from Vol6) and is an international medium for publishing experimental and theoretical papers on materials with wide varieties of applications which was founded in 2021 by Semnan University. The experimental scope of the journal includes the synthesis, growth, processing, and characterization of new materials for improving their electrical, optical, dielectric, and magnetic properties. Theoretical and analytical papers are also within the scope of the journal. The journal also publishes review articles, both short and specific or long and general, within the scope of the journal. The papers should contain extensive and novel experimental and theoretical works with rigorous analysis and sound interpretation.  Interdisciplinary articles are also welcome. 

 

We are pleased to inform you that, according to the recent approval of the Editorial Board and relevant authorities, the publication frequency of this journal has been changed from a biannual to a quarterly journal. This change aims to enhance scientific quality, accelerate the publication process, and strengthen the dynamic interaction among researchers and authors.

Scopus We are pleased to announce that the application for Scopus membership of the Progress in Physics of Applied Materials (PPAM) has been accepted on February 17, 2025.

SCImago Journal Rank (SJR)

COPE We are pleased to announce that the application for COPE  membership of the Progress in Physics of Applied Materials (PPAM) has been accepted on June, 2024.

https://members.publicationethics.org/members/progress-physics-applied-materials

 

The Progress in Physics of Applied Materials (PPAM) utilizes "Plagiarism Detection Software (iThenticate)" for checking the originality of submitted manuscripts in the reviewing process.

 

Please bear in mind that:

The Progress in Physics of Applied Materials doesn’t accept and publish any advertisement in the journal website and articles.

Article Processing Charge (APC)

In accordance with the policy of Semnan University Press, an Article Processing Charge (APC) applies to all manuscripts accepted for publication in the Journal of Progress in Physics of Applied Materials (PPAM). For submissions made on or after May 1st , 2026, the APC is USD 400 for non-Iranian corresponding authors and 20,000,000 Iranian Rials for Iranian corresponding authors.

Please note that this fee applies only to manuscripts that successfully pass the peer-review process and are accepted for publication; there are no fees associated with initial submission or the review process. This APC supports the various stages of the publishing workflow, including editorial handling, peer review, copyediting, typesetting, and long-term archiving. These charges enable the journal to maintain high scholarly standards and ensure the broad dissemination and accessibility of published research to a global audience. Waivers may be granted upon request by the corresponding author, subject to the approval of the Editor-in-Chief.

 

 

Current Issue: Volume 7, Issue 2 - Serial Number 15, Summer 2027 (In Progress) 

Optimization of the Magnetothermal Properties of LGSMO–MXene–Based Nanocomposite for Magnetic Refrigeration Applications

Pages 9-15

10.22075/ppam.2026.41822.1245

Artemy Igorevich Kagramanian, Egor Alexandrovich Kanareykin, Yury Ivanovich Spichkin, Mohammad Hossein Ehsani, Alexander Mettalinovich Tishin

Keywords Cloud

  • Optical properties
  • density functional theory
  • Magnetic properties
  • electrodeposition
  • Hydrothermal method
  • Induction heating
  • band gap
  • refractive index
  • DFT
  • Chitosan
  • Supercapacitors
  • Nanocomposites
  • Nanoparticles
  • Graphene Oxide
  • COMSOL Multiphysics
  • PVA
  • Graphene
  • Nanomaterial
  • Sol-Gel Method
  • Half-metallic
  • Magnetization
  • liquid crystal
  • PC1D
  • Adsorption
  • Cyclic voltammetry
  • TiO2 nanostructures
  • Simulation
  • Fractional Schrödinger Equation
  • Magnetic hyperthermia
  • Morphology
  • Czochralski method
  • transmission coefficient
  • transfer matrix method
  • Binder-free electrode
  • Thermal treatment
  • Resistivity
  • FTIR
  • Nonlinear optics
  • finite element method
  • Electronic properties
  • Copper spinel ferrite
  • Single crystal X-ray diffraction
  • Seebeck coefficient
  • Electrical properties
  • Supercapacitor
  • antibacterial
  • Spinel Ferrite
  • Activated carbon
  • Geant4
  • Molecular dynamics simulation
  • Green synthesis
  • CuFe2O4
  • Sintering Temperature
  • solar cell
  • Thermal Evaporation
  • Superarrival
  • SCAPS-1D
  • Optical fibers
  • Multi-walled carbon nanotubes
  • Efficiency
  • Solid State
  • Quantum efficiency
  • luminescence
  • Hydrothermal
  • Sol-gel
  • Magnetocaloric effect
  • Perovskite solar cells
  • Metal-Organic Framework (MOF)
  • Mixing pairing
  • Photocatalytic activity
  • Germanene
  • Thermal hysteresis
  • water contact angle
  • Manganites
  • Hybrid nanocomposites
  • Blood serum
  • Process parameter
  • Nanoferrate
  • Laser Beam Intensity
  • Cobalt oxide
  • Composite
  • crystal structure
  • Protein
  • ZnO NPs
  • Surface Charge Density
  • Core@shell structure
  • Molecular Simulations
  • Cathodic electrical deposition method
  • Leucas cephalotes (Lc)
  • Orthoferrites
  • titanium doping
  • Drude model
  • Ion drift motion
  • radiation
  • Universal Curve
  • Fiber Bragg grating
  • GMR
  • Copper Zinc Tin Sulfur
  • Clogston-Chandrasekhar limit
  • Coercivity
  • Verdet constant
  • Photosensor
  • Pulsed electron beam irradiation
  • ZnO/ZnFe2O4 nanocomposite
  • Pulse propagation
  • Spiro-OMeTAD
  • Antireflection coating
  • Photonic band gap
  • Ferromagnetic coupling
  • PbS
  • Polyvinyl Alcohol Polymer (PVA)
  • Growth mechanism
  • Co2+-doping
  • Alkali- Halides
  • SnO2, Boron, Spray pyrolysis
  • Zigzag Edges
  • nanocore-metallic shell
  • quantum teleportation
  • contact corrosion
  • Paraxial wave equations
  • powder X-Ray diffraction
  • Plasmonics
  • Crystallite sizes
  • Vanadium oxide
  • ITO substrates
  • BaFe12O19/rGO nanocomposites
  • (WO₃)₁₋ₓ(NiO)ₓ Films
  • Defect
  • Raman spectroscopy
  • Tribology
  • Optoelectronic
  • MgF2 and SiO2 thin films
  • co-precipitation
  • Polycrystalline aggregates
  • 5CB
  • Gamma shielding
  • Lattice micro-strain
  • liquid interaction, Surface modification, AFM, SEM
  • Silicon (Si)
  • Hexaferrite
  • npn transistor
  • Bharatiya Nirdeshak Dravya (BND®)
  • Single crystal
  • Calcination temperature
  • Quantum antidots
  • Superparamagnetism
  • Structure Phase Transition
  • Ferrimagnetic to Diamagnetic Transition
  • Plasma treatment
  • Attenuation Coefficient
  • ion migration
  • Physicochemical properties
  • Zn/Mn Co-Substitutions
  • HIV-1
  • Particle size
  • Finite element analysis
  • plasmon frequency
  • Lanthanum manganite
  • Manganite
  • Yb2V2O7
  • Wastewater treatment
  • Generalized Kane-Mele model
  • Physical properties
  • Aluminum Gallium Arsenide (AlGaAs)
  • Porous materials
  • Visible Light
  • CuO
  • Intrinsic Defects
  • Split-Step finite difference method
  • Impurities
  • Fe3O4 ferrite
  • UV-vis spectra
  • conductivity
  • MXenes Nanoribbons
  • Perovskites
  • Fluoride
  • ZnF2O4 nanoparticles
  • CO2 laser
  • Additives
  • Oxide semiconductors
  • Antimicrobial Activity
  • Surface-Enhanced Raman Scattering (SERS)
  • Lead-free
  • Photocatalytic
  • Metamaterials
  • hysteresis
  • Landau theory
  • Copper Spinel Bismuth
  • Potential Asymmetry
  • Keywords: Zinc oxide nanoparticles
  • Synthesis
  • Moving potential
  • Circular waveguide
  • RhB dye degradation
  • Reflection
  • Rashba Spin-Orbit interaction
  • magnetic refrigration
  • Green energy
  • Ce-doped CuO
  • Bare Co-Fe3O4