BATTERY 2030+ and its Research Roadmap: A Bibliometric Analysis
Per Ahlgren1, Tobias Jeppsson2, Esa Stenberg3
1Department of Statistics, Uppsala University, Box 513, 751 20, Uppsala, Sweden.
Chemsuschem
|June 21, 2023
Summary
This study analyzes battery research in Materials Acceleration Platform and Smart Sensing, evaluating Europe's global standing and identifying key research hubs. It maps publication trends and collaborations within the BATTERY 2030+ initiative.
Area of Science:
- Battery Technology
- Materials Science
- Electrochemistry
Background:
- The BATTERY 2030+ roadmap outlines critical research areas for future battery technologies.
- Understanding the global and European research landscape is crucial for strategic development.
Purpose of the Study:
- To assess Europe's position in Materials Acceleration Platform and Smart Sensing research within the broader BATTERY 2030+ context.
- To identify leading European countries and institutions in these key battery research subfields.
Main Methods:
- Bibliometric analysis of publications related to the BATTERY 2030+ roadmap.
- Utilizing seed articles to identify and classify similar research outputs algorithmically.
- Analyzing publication volumes, citation impact, co-publishing networks, and keyword co-occurrence.
Main Results:
- Evaluation of European research output and impact in Materials Acceleration Platform and Smart Sensing compared to global trends.
- Identification of specific European countries and organizations demonstrating significant contributions and leadership.
- Mapping of collaborative networks and thematic clusters within the analyzed research fields.
Conclusions:
- Provides insights into the strengths and weaknesses of European battery research in specific high-priority areas.
- Informs future research funding and strategic planning for the BATTERY 2030+ initiative.
- Highlights key players and emerging trends in advanced battery materials and functionalities.
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