Journal of Materiomics

Scope & Guideline

Unveiling the Potential of Materials Across Industries

Introduction

Welcome to your portal for understanding Journal of Materiomics, featuring guidelines for its aims and scope. Our guidelines cover trending and emerging topics, identifying the forefront of research. Additionally, we track declining topics, offering insights into areas experiencing reduced scholarly attention. Key highlights include highly cited topics and recently published papers, curated within these guidelines to assist you in navigating influential academic dialogues.
LanguageEnglish
ISSN2352-8478
PublisherELSEVIER
Support Open AccessYes
CountryChina
TypeJournal
Convergefrom 2015 to 2025
AbbreviationJ MATERIOMICS / J. Materiomics
Frequency4 issues/year
Time To First Decision-
Time To Acceptance-
Acceptance Rate-
Home Page-
AddressRADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS

Aims and Scopes

The Journal of Materiomics focuses on the interdisciplinary study of materials, particularly their properties, applications, and the underlying mechanisms governing their behavior. It aims to bridge the gap between fundamental materials science and practical engineering applications.
  1. Thermoelectric Materials and Devices:
    Research on materials that can convert heat into electricity and vice versa, focusing on enhancing their thermoelectric efficiency and understanding the underlying physical phenomena.
  2. Ferroelectric and Piezoelectric Ceramics:
    Investigation of ceramics that exhibit ferroelectric and piezoelectric properties, with applications in sensors, actuators, and energy harvesting devices.
  3. Advanced Composite Materials:
    Development and characterization of composite materials that combine different phases to enhance mechanical, thermal, and electrical properties for various applications.
  4. Nanostructured Materials:
    Study of materials at the nanoscale, including synthesis, characterization, and their unique properties that differ from bulk materials, with applications in electronics and energy storage.
  5. Functional Coatings and Thin Films:
    Research on coatings that impart specific functionalities to substrates, including optical, electrical, and protective properties, often involving advanced manufacturing techniques.
  6. Machine Learning and Data-Driven Materials Science:
    Application of machine learning techniques to predict material properties and optimize material designs, representing a growing trend in computational materials science.
The Journal of Materiomics is witnessing a rise in interest in several emerging themes, indicating the evolving landscape of materials science.
  1. High-Entropy Materials:
    Research on high-entropy alloys and ceramics is gaining traction due to their unique properties and potential applications in various fields, including aerospace and energy.
  2. Sustainable and Eco-Friendly Materials:
    There is an increasing focus on developing environmentally friendly materials and processes, aligning with global sustainability goals.
  3. Energy Storage Technologies:
    Emerging themes in energy storage, particularly solid-state batteries and supercapacitors, reflect the growing demand for efficient energy storage solutions.
  4. Two-Dimensional Materials:
    The study of two-dimensional materials, such as MXenes and graphene derivatives, is rapidly expanding due to their unique electronic and mechanical properties.
  5. Smart Materials and Sensors:
    Research on materials that can respond to external stimuli (temperature, light, etc.) for applications in smart devices and sensors is becoming more prominent.

Declining or Waning

While the journal covers a broad range of topics, certain themes have shown a decrease in publication frequency, indicating a potential waning interest or saturation in those areas.
  1. Traditional Bulk Materials:
    There has been a noticeable decline in papers focused solely on traditional bulk materials, as the field shifts towards more innovative and functional materials.
  2. Conventional Photovoltaic Technologies:
    Research on older photovoltaic technologies has decreased as newer materials and methods, such as perovskite solar cells, gain prominence.
  3. Basic Dielectric Materials:
    Studies focusing on basic dielectric materials without novel modifications or applications are less frequently published, as the field moves towards more application-oriented research.
  4. Single-Function Materials:
    Research on materials with single functionalities is declining in favor of multifunctional materials that can serve multiple purposes in advanced applications.

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