
Academic Journal
Q1Electrochemical Energy Reviews
About Electrochemical Energy Reviews
Electrochemical Energy Reviews is a scholarly journal published by Springer. SCImago 2025 places it in Q1 with an SJR of 8.084 and an H-index of 94.
Its listed coverage is 2018-2026 and its research categories include Chemical Engineering (miscellaneous) (Q1); Electrochemistry (Q1); Energy Engineering and Power Technology (Q1); Materials Science (miscellaneous) (Q1). The 2025 dataset reports 35 documents and 4162 citations across the latest three-year reporting window.
Electrochemical Energy Reviews: Advancing Clean Energy Innovation
In the evolving landscape of clean energy, electrochemical energy storage and conversion play a vital role in enabling sustainable technologies. At the forefront of academic and industrial research in this field is the journal Electrochemical Energy Reviews (EER). Known for publishing high-impact articles, EER serves as a comprehensive platform for the latest advancements in electrochemical systems, including batteries, fuel cells, supercapacitors, and electrolyzers.
What is Electrochemical Energy Reviews?
Electrochemical Energy Reviews is a peer-reviewed scientific journal that publishes cutting-edge research and comprehensive reviews on electrochemical energy science. It is published by Springer and has quickly gained recognition due to its high citation rates and relevance in the energy research community. With a strong editorial board of experts from top institutions worldwide, the journal ensures that only high-quality, innovative research is disseminated.
Focus Areas and Topics
The journal covers a broad spectrum of topics related to electrochemical energy, such as:
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Lithium-ion and next-generation batteries
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Fuel cells and hydrogen energy systems
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Supercapacitors and hybrid storage devices
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Electrocatalysis and electrode materials
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Water splitting, CO₂ reduction, and green hydrogen production
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Advanced materials for energy storage and conversion
Each issue of Electrochemical Energy Reviews includes critical reviews, original research, and perspectives that highlight both fundamental science and applied engineering.
Why Electrochemical Energy Matters
As the global demand for renewable energy rises, efficient and scalable energy storage becomes a cornerstone of sustainability. Technologies reviewed in EER contribute directly to:
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Reducing carbon emissions
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Improving grid stability through energy storage
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Advancing electric vehicles (EVs) and portable electronics
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Accelerating the hydrogen economy
With the urgent need for climate solutions, the electrochemical research published in this journal has real-world implications, driving innovation and informing policy.
Impact Factor and Reputation
EER boasts a strong impact factor, reflecting its influence in the scientific community. It is consistently ranked among the top journals in energy and electrochemistry categories. For researchers and professionals in the field, publishing in or reading from Electrochemical Energy Reviews is a mark of credibility and access to top-tier scientific discourse.
Open Access and Global Reach
To increase accessibility, Electrochemical Energy Reviews offers open access options, allowing global researchers, students, and industry experts to benefit from its findings. This global reach supports knowledge sharing and fosters international collaboration.
Journal Metrics
Metrics can change by reporting year. Verify time-sensitive values with the publisher or indexing service.
Aims & Scope
Title:
Electrochemical Energy Reviews: Advancing Innovation in Sustainable Power Storage and Conversion
Article Scope Overview (Approx. 500 Words):
1. Introduction (50–70 words)
Briefly introduce the field of electrochemical energy, emphasizing its critical role in the transition to renewable and sustainable energy systems. Mention the increasing global interest in advanced energy storage and conversion technologies. Highlight Electrochemical Energy Reviews as a high-impact journal contributing to this innovation.
SEO Keywords:
electrochemical energy, energy storage, sustainable energy, Electrochemical Energy Reviews, renewable energy journal
2. About Electrochemical Energy Reviews (80–100 words)
Provide an overview of the journal Electrochemical Energy Reviews — its publisher (Springer), its impact factor (if available), and its reputation in the academic and research community. Mention its scope, which includes batteries, fuel cells, supercapacitors, and electrochemical conversion processes.
SEO Keywords:
Electrochemical Energy Reviews journal, Springer energy journals, high-impact energy publications, battery research, electrochemical conversion
3. Key Research Areas Covered (120–150 words)
Break down the core focus areas of the journal. Include:
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Lithium-ion and solid-state batteries
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Fuel cells and hydrogen energy
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Supercapacitors and hybrid storage systems
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Electrochemical CO2 reduction and water splitting
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Emerging materials and nanotechnology in electrochemistry
Highlight how these technologies support decarbonization, electric mobility, and smart grid applications.
SEO Keywords:
energy storage systems, hydrogen fuel cells, supercapacitors, CO2 reduction, electrochemical research, battery innovation
4. Importance and Impact on the Industry (100–120 words)
Explain how research published in the journal influences industry, policy, and technology development. Mention the journal's readership (academics, engineers, policymakers) and how it bridges the gap between theoretical research and real-world applications.
Recent Research Articles
Latest publications matched automatically by ISSN.
Interfacial Chemistry of Layered Oxide Cathodes for Sodium-Ion Batteries: A Review
Caixia Chen, Peizhao Shan, Jun Zhou, Chenpeng Xie et al.
2026-12 · DOI: 10.1007/s41918-026-00295-yRecent Progress on Electrolytes and Separators of Aqueous Zinc–Iodine Batteries: Mechanisms, Challenges and Perspectives
Dongmei Qi, Xusen Chen, Xiudong Chen, Yajiang Wang et al.
2026-12 · DOI: 10.1007/s41918-026-00294-zCorrection: Multiple In Situ/Operando Synchrotron Spectroscopic Characterizations Decrypting Electrocatalytic Water Splitting Dynamics
Yuanli Li, Mikhail A. Soldatov, Bogdan O. Protsenko, Alexander A. Guda et al.
2026-12 · DOI: 10.1007/s41918-026-00292-1Rational Design and Multi-Scale Engineering of Iridium-Based Catalysts for Acidic Oxygen Evolution: From Atomic-Level Insights to Industrialization
Yuxin Zhang, Hongbin Zhao, Yu Gao, Muhammad Arif Khan et al.
2026-12 · DOI: 10.1007/s41918-026-00290-3Multiscale Strategies for Lithium-Ion Battery Thermal Safety: All-Climate Adaptability and Advances in Immersion Cooling
Xiangwei Lin, Zhifu Zhou, Yubai Li, Weitao Wu et al.
2026-12 · DOI: 10.1007/s41918-026-00291-2Evaluating the Interfaces of High-Voltage Cathodes in Batteries
Yongxin Zhang, Yusheng Ye, Lingchen Kong, Hao Liu et al.
2026-12 · DOI: 10.1007/s41918-026-00286-zReview of Particle Size Effects of Solid Electrolytes in All-Solid-State Batteries
Tianyu Lei, Linfeng Peng, Chaochao Wei, Shijie Cheng et al.
2026-12 · DOI: 10.1007/s41918-026-00288-xQuantum Dot-Based Electrocatalysts for Hydrogen Evolution Reaction: Mechanisms, Strategies, and Industrial Perspectives
Mingliang Zhang, Ruiyang Xiao, Hanqing Dai, Wanlu Zhang et al.
2026-12 · DOI: 10.1007/s41918-026-00289-wPolymer Electrolyte Membrane Water Electrolysis for Hydrogen Energy: Advanced Electrocatalysts, Membranes, and Functional Mechanisms
Ruiwen Zhang, Shiming Zhang, Jiujun Zhang
2026-12 · DOI: 10.1007/s41918-026-00287-yAdvanced Synthesis, Structure Design, and Property Tailoring of Carbon-Based Aerogels Toward Efficient Energy Storage and Conversion: Supercapacitors, Batteries, and Electrocatalysts
Shanshan Li, Jiahui Zhao, Yu Feng, Jiancheng Wang et al.
2026-12 · DOI: 10.1007/s41918-025-00277-6Multiple In Situ/Operando Synchrotron Spectroscopic Characterizations Decrypting Electrocatalytic Water Splitting Dynamics
Yuanli Li, Mikhail A. Soldatov, Bogdan O. Protsenko, Alexander A. Guda et al.
2026-12 · DOI: 10.1007/s41918-026-00278-zReview on Self-Humidifying Fuel Cell Systems: Materials, Systems, and Challenges
Shangfeng Jiang, Chuang Zhai, Bowen Wang, Fan Zhang et al.
2026-12 · DOI: 10.1007/s41918-026-00283-2Advanced Aqueous Sodium–Air Batteries: From Chemical and Electrochemical Fundamentals to Future Perspectives
Bowen Xu, Xuantian Feng, Kun Ren, Fupeng Li et al.
2026-12 · DOI: 10.1007/s41918-026-00282-3Multi-Scenario Digital Modeling and Simulation of Lithium-Ion Batteries
Weizhuo Li, Zhiming Bao, Dingjian Wang, Yang Wang et al.
2026-12 · DOI: 10.1007/s41918-026-00284-1Recent Advances in Membrane Electrode Assembly for Anion Exchange Membrane Water Electrolysis: Performance and Durability Enhancement
Rongfu Hong, Jing Su, Jiayang Li, Jian Gu et al.
2026-12 · DOI: 10.1007/s41918-026-00281-4Recent Advances in Electrolyte Engineering for Aqueous Zinc–Iodine Batteries: Challenges and Strategies for Optimization
Weinan Zhao, Grace Jin, Zijing Xu, Xue Han et al.
2026-12 · DOI: 10.1007/s41918-026-00280-5Inorganic Sodium Solid-State Electrolytes: Progress, Existing Issues, and Solutions Towards High-Performance All Solid-State Batteries
Lingjun Huang, Chun Huang
2026-12 · DOI: 10.1007/s41918-026-00279-ySalt-Assisted Synthesis of 2D Materials for Electrochemical Applications
Kang Chen, Liang Huang, Kaifu Huo
2026-12 · DOI: 10.1007/s41918-025-00276-7From Membranes to Electrodes: Aligned Membrane Electrode Assemblies for Ion-Exchange Membrane Fuel Cells and Water Electrolyzers
Lianqin Wang, Yang Xiao, Shan Guan, Xinyi Cao et al.
2026-12 · DOI: 10.1007/s41918-025-00269-6Solid-State Lithium Batteries with Liquid Additives: A Critical Review of Progress and Challenges
Xingwen Yu, Zizhou He, Zhangsen Chen, Serdar Yildirim et al.
2026-12 · DOI: 10.1007/s41918-025-00273-wReviews
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Version History
April 20, 2025 at 3:31 am
April 20, 2025