JOURNAL OF PHYSICS D-APPLIED PHYSICS

Scope & Guideline

Connecting Researchers to the Pulse of Applied Physics

Introduction

Delve into the academic richness of JOURNAL OF PHYSICS D-APPLIED PHYSICS with our guidelines, detailing its aims and scope. Our resource identifies emerging and trending topics paving the way for new academic progress. We also provide insights into declining or waning topics, helping you stay informed about changing research landscapes. Evaluate highly cited topics and recent publications within these guidelines to align your work with influential scholarly trends.
LanguageEnglish
ISSN0022-3727
PublisherIOP Publishing Ltd
Support Open AccessNo
CountryUnited Kingdom
TypeJournal
Convergefrom 1967 to 2024
AbbreviationJ PHYS D APPL PHYS / J. Phys. D-Appl. Phys.
Frequency50 issues/year
Time To First Decision-
Time To Acceptance-
Acceptance Rate-
Home Page-
AddressTEMPLE CIRCUS, TEMPLE WAY, BRISTOL BS1 6BE, ENGLAND

Aims and Scopes

The JOURNAL OF PHYSICS D-APPLIED PHYSICS publishes high-quality research that advances the field of applied physics. The journal focuses on the interplay between fundamental physics and practical applications, covering a wide range of topics that leverage theoretical, experimental, and computational methodologies.
  1. Applied Physics and Materials Science:
    The journal emphasizes research that applies physical principles to materials science, including the study of semiconductors, nanostructures, and novel materials for electronic, photonic, and energy applications.
  2. Nanotechnology and Nanomaterials:
    Research related to the synthesis, characterization, and application of nanomaterials, including their unique optical, electronic, and mechanical properties.
  3. Plasma Physics and Applications:
    Studies involving the generation, control, and application of plasmas, particularly in areas like plasma processing, plasma medicine, and environmental applications.
  4. Optoelectronics and Photonics:
    Focus on devices and systems that utilize light for applications, including photodetectors, lasers, and photovoltaic devices.
  5. Magnetism and Spintronics:
    Research that explores magnetic materials and their applications in spintronic devices, including studies on magnetic properties, magnetoresistance, and spin dynamics.
  6. Theoretical and Computational Physics:
    The journal welcomes contributions that utilize theoretical frameworks and computational methods to understand and predict the behavior of physical systems.
Recent publications indicate several trending and emerging themes within the journal, reflecting contemporary challenges and innovations in applied physics.
  1. Metamaterials and Metasurfaces:
    Research on metamaterials and metasurfaces is gaining traction, focusing on their unique properties for applications in sensing, imaging, and energy absorption.
  2. Quantum Materials and Devices:
    Emerging interest in quantum materials, including topological insulators and quantum dot systems, is reflecting a broader push towards quantum computing and advanced electronic devices.
  3. Sustainable and Green Technologies:
    There is a rising trend in research aimed at developing sustainable materials and technologies, especially in energy generation, storage, and environmental remediation.
  4. Plasma Medicine and Biotechnology:
    Applications of plasma technology in medicine and biotechnology are increasingly explored, particularly in the areas of sterilization, wound healing, and cancer treatment.
  5. Advanced Energy Storage Solutions:
    The focus on novel materials and devices for energy storage, including supercapacitors and batteries utilizing nanostructured materials, is expanding rapidly.
  6. Machine Learning in Materials Science:
    The integration of machine learning techniques in materials science research is emerging, highlighting the potential for data-driven approaches to accelerate material discovery and optimization.

Declining or Waning

While the journal continues to evolve, certain themes appear to be diminishing in prominence. These waning scopes may reflect shifts in research focus or advancements in related fields.
  1. Traditional Semiconductor Devices:
    There is a noticeable decline in research focused solely on conventional semiconductor devices, as the field shifts towards more advanced materials and device architectures.
  2. Classical Optical Devices:
    Research on classical optical devices, such as standard lenses and filters, is decreasing as interest grows in more complex photonic structures and metasurfaces.
  3. Linear Electronics:
    The prominence of linear electronic devices is waning in favor of non-linear, quantum, and neuromorphic computing technologies that offer greater capabilities.
  4. Static Magnetic Materials:
    Research centered on static magnetic materials is less frequent, with a shift towards dynamic systems and materials that can be manipulated in real-time for applications in spintronics.

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