INTERNATIONAL JOURNAL OF NUMERICAL MODELLING-ELECTRONIC NETWORKS DEVICES AND FIELDS

Scope & Guideline

Pioneering research in electronic devices and fields.

Introduction

Welcome to the INTERNATIONAL JOURNAL OF NUMERICAL MODELLING-ELECTRONIC NETWORKS DEVICES AND FIELDS information hub, where our guidelines provide a wealth of knowledge about the journal’s focus and academic contributions. This page includes an extensive look at the aims and scope of INTERNATIONAL JOURNAL OF NUMERICAL MODELLING-ELECTRONIC NETWORKS DEVICES AND FIELDS, highlighting trending and emerging areas of study. We also examine declining topics to offer insight into academic interest shifts. Our curated list of highly cited topics and recent publications is part of our effort to guide scholars, using these guidelines to stay ahead in their research endeavors.
LanguageEnglish
ISSN0894-3370
PublisherWILEY
Support Open AccessNo
CountryUnited Kingdom
TypeJournal
Convergefrom 1988 to 2024
AbbreviationINT J NUMER MODEL EL / Int. J. Numer. Model.-Electron. Netw. Device Fields
Frequency6 issues/year
Time To First Decision-
Time To Acceptance-
Acceptance Rate-
Home Page-
Address111 RIVER ST, HOBOKEN 07030-5774, NJ

Aims and Scopes

The INTERNATIONAL JOURNAL OF NUMERICAL MODELLING-ELECTRONIC NETWORKS DEVICES AND FIELDS focuses on the advancement of numerical modeling methodologies and their applications in electronic devices, circuits, and systems. The journal encompasses a variety of topics related to numerical methods, modeling techniques, and innovative applications in the field of electronics and electrical engineering.
  1. Numerical Modeling Techniques:
    The journal publishes research on various numerical modeling techniques, including finite element methods, boundary element methods, and meshless methods. These techniques are crucial for simulating complex physical phenomena in electronic devices.
  2. Electronic Device Design and Analysis:
    A significant focus is placed on the design, modeling, and analysis of electronic devices such as transistors, amplifiers, and sensors. This includes the exploration of new materials and structures, particularly in semiconductor devices.
  3. Emerging Technologies in Electronics:
    Research on emerging technologies, including quantum-dot cellular automata, terahertz devices, and high-frequency applications, is a core area. The journal emphasizes innovative approaches to enhance device performance and functionality.
  4. Machine Learning and AI in Modeling:
    The integration of machine learning and artificial intelligence techniques into numerical modeling and design processes is increasingly highlighted. This includes the use of AI for optimization and predictive modeling in electronic systems.
  5. Environmental and Energy Applications:
    The journal also addresses applications related to energy systems, including renewable energy technologies, power management in microgrids, and energy-efficient designs, reflecting a growing trend towards sustainability in electronics.
The journal has demonstrated an adaptive focus on emerging themes and technologies, which reflects current trends and the future direction of research in numerical modeling and electronic devices.
  1. AI and Machine Learning Integration:
    There is a growing trend towards integrating AI and machine learning techniques within modeling and design processes. This includes using neural networks for predictive modeling and optimization, indicating a shift towards data-driven methodologies.
  2. Advanced Materials and Nanotechnology:
    Research involving advanced materials, such as 2D materials (e.g., graphene, transition metal dichalcogenides) and nanostructures, is on the rise. This trend is driven by the demand for high-performance electronic devices and sensors.
  3. Wireless Communication and 5G Technologies:
    The journal has increasingly published works related to the design and optimization of antennas and systems for wireless communication, particularly in the context of 5G technologies. This focus reflects the industry's push for enhanced connectivity and performance.
  4. Environmental Impact and Energy Efficiency:
    There is a significant emphasis on sustainable technologies and energy-efficient designs, particularly in renewable energy applications. Research addressing the environmental impact of electronic devices is gaining traction.
  5. Multiphysics and Multiscale Modeling:
    The trend towards multiphysics and multiscale modeling is evident, with researchers exploring complex interactions in electronic systems. This approach is crucial for accurately simulating real-world applications and improving device performance.

Declining or Waning

As the field evolves, certain themes within the journal's scope have seen a decline in prominence. This can be attributed to the rapid advancements in technology and shifts in research focus.
  1. Traditional Circuit Simulation Methods:
    There is a noticeable decline in papers focusing solely on traditional circuit simulation methods. As more advanced modeling techniques and tools emerge, traditional approaches are being overshadowed by more innovative methodologies.
  2. Low-Frequency Applications:
    Research specifically targeting low-frequency applications has decreased. The journal's recent publications indicate a shift towards high-frequency and RF applications, reflecting industry trends.
  3. Basic Semiconductor Physics:
    The exploration of fundamental semiconductor physics topics appears to be waning. Instead, there is a stronger emphasis on device-level modeling and practical applications, as researchers seek to bridge the gap between theory and practice.

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