
Academic Journal
Q1ACS Energy Letters
About ACS Energy Letters
ACS Energy Letters is a scholarly journal published by American Chemical Society. SCImago 2025 places it in Q1 with an SJR of 5.783 and an H-index of 252.
Its listed coverage is 2016-2026 and its research categories include Chemistry (miscellaneous) (Q1); Energy Engineering and Power Technology (Q1); Fuel Technology (Q1); Materials Chemistry (Q1); Renewable Energy, Sustainability and the Environment (Q1). The 2025 dataset reports 661 documents and 30627 citations across the latest three-year reporting window.
ACS Energy Letters is a high-impact, peer-reviewed journal published by the American Chemical Society (ACS), dedicated to the rapid dissemination of cutting-edge research in all areas of energy science and technology. Since its inception in 2016, it has quickly become a go-to source for scientists, researchers, and industry professionals focused on the future of energy.
What is ACS Energy Letters?
ACS Energy Letters publishes short, urgent communications that present significant advances in the field of energy. This includes but is not limited to renewable energy, energy storage, fuel cells, solar cells, batteries, hydrogen energy, and energy conversion technologies. With its rapid publication timeline and global reach, the journal plays a critical role in pushing the boundaries of innovation.
High-Impact Factor and Reputation
With a consistently high Impact Factor, ACS Energy Letters is recognized globally for the quality and relevance of its publications. The journal attracts leading researchers from academia, government, and industry who are working on sustainable energy solutions and advanced materials.
Its rigorous peer-review process ensures that only the most impactful and innovative studies are published, making it a trusted source in the field of energy research.
Key Features and Benefits
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Fast Publication: One of the unique advantages of ACS Energy Letters is its rapid review and publication process. This is crucial for fast-moving fields like energy technology, where timely dissemination of findings can drive further research and development.
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Global Visibility: As part of the ACS Publications family, articles published in ACS Energy Letters are indexed in major databases like Scopus, Web of Science, and PubMed, giving researchers excellent visibility and reach.
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Diverse Topics: The journal covers a broad spectrum of topics including photovoltaics, electrochemical energy storage, supercapacitors, catalysis for energy applications, and emerging materials for next-generation technologies.
Why It Matters in Today’s World
As the world faces growing challenges related to climate change and energy sustainability, ACS Energy Letters provides a crucial platform for innovations that could transform how we produce, store, and use energy. Whether it's new battery chemistries, breakthroughs in solar energy efficiency, or novel materials for hydrogen fuel cells, this journal helps bring the future of energy into focus.
For Authors and Researchers
Researchers looking to publish in ACS Energy Letters benefit from a streamlined submission process, strong editorial support, and a highly engaged audience. With its open-access options and wide readership, the journal helps maximize the impact of your research.
Journal Metrics
Metrics can change by reporting year. Verify time-sensitive values with the publisher or indexing service.
Aims & Scope
ACS Energy Letters is a high-impact, peer-reviewed journal published by the American Chemical Society (ACS), known for its rapid publication of cutting-edge research in the field of energy. Since its inception, the journal has become a vital platform for scientists and engineers working at the forefront of energy science and technology. The journal is especially valued for its interdisciplinary approach, timely dissemination of information, and commitment to publishing groundbreaking discoveries with broad implications for energy conversion, storage, and sustainability.
Broad yet Focused Scope
The scope of ACS Energy Letters encompasses a wide range of topics related to energy research, from fundamental scientific discoveries to applied technologies. The journal welcomes contributions across the disciplines of chemistry, materials science, physics, and engineering—provided the work offers significant insight into energy-related challenges or innovations.
Key focus areas include:
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Energy Conversion: Research on solar cells, photocatalysis, fuel cells, and thermoelectrics. Studies that provide mechanistic insights or propose novel architectures and materials are especially welcomed.
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Energy Storage: Topics like batteries (lithium-ion, sodium-ion, solid-state), supercapacitors, and hydrogen storage fall under this category. Research should demonstrate a clear advancement in efficiency, stability, scalability, or cost-effectiveness.
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Materials for Energy Applications: The development and characterization of new materials—such as perovskites, organic semiconductors, or metal-organic frameworks—that can be used in energy harvesting, conversion, or storage.
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Theoretical and Computational Studies: The journal also publishes modeling and simulation work that offers predictive insights into material behavior or device performance, especially when such insights can guide future experimental efforts.
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Sustainability and Environmental Impact: With the global push toward decarbonization, ACS Energy Letters is increasingly focused on sustainable energy technologies, carbon capture, green hydrogen, and life cycle analysis of energy systems.
Fast-Paced Publication and Global Reach
One of the hallmarks of ACS Energy Letters is its rapid review and publication process. The journal prioritizes research that is timely and impactful, enabling authors to share their findings quickly with a global audience. This fast-track model makes it a favorite among researchers looking to disseminate novel discoveries in a competitive scientific landscape.
Who Should Submit?
ACS Energy Letters is ideal for academic researchers, industry professionals, and innovators working on next-generation energy technologies. Whether you're developing the next breakthrough in solar energy or optimizing materials for efficient batteries, this journal offers an unparalleled platform for your work.
Recent Research Articles
Latest publications matched automatically by ISSN.
Development of a Membraneless Flow-Through Electrochemical Cell for Direct Ocean Capture
Prince Aleta, Mohsen Afshari, Abdelrahman Refaie, Ahmad Hassan et al.
2026-09-09 · DOI: 10.1021/acsenergylett.6c02243Stabilizing High-Voltage Operation in O3-Type Na-Layered Cathodes by Suppressing Distortion-Driven Fe Migration
Taegyu Kim, Hyunji Kweon, Hoseok Lee, Lahyeon Jang et al.
2026-09-09 · DOI: 10.1021/acsenergylett.6c02530Moisture-Activated, Low-Temperature Regeneratable Hydrogels for Cost-Effective Carbon Dioxide Capture and Water Harvesting
Chen Wang, Derick Yi, Andrew St. Pierre, Youhong Guo et al.
2026-09-09 · DOI: 10.1021/acsenergylett.6c02187Mn[B(HFIP)4]2: A Weakly Coordinating Electrolyte for Mn Metal Batteries
Jian Zhang, Fang Chen, Bowen Liu, Liang Chen et al.
2026-09-08 · DOI: 10.1021/acsenergylett.6c02094Unraveling the Role of MASCN in Controlling Phase Distribution for High-Efficiency Quasi-2D Stilbene-Based Perovskite Solar Cells
Susana Ramos-Terrón, Pablo Gómez Argudo, Luis Camacho, Naji Vahedigharehchopogh et al.
2026-09-08 · DOI: 10.1021/acsenergylett.6c02235Atomic-Scale Intergrowth Regulation Enables Long-Cycling Zero-Strain Sodium Layered Oxide Cathodes
Ling Li, Jialong Shen, Zhen Li, Yu Yao et al.
2026-09-08 · DOI: 10.1021/acsenergylett.6c01278Nonmonotonic Li-Content Evolution and Size-Dependent Lithium Accessibility in Degraded High-Nickel Cathodes
Sungjae Seo, Sugeun Jo, Hwiho Kim, Juwon Kim et al.
2026-09-08 · DOI: 10.1021/acsenergylett.6c01660Valorization of Nitrate and Carbon Dioxide into Ammonia and Urea under Visible Light
Eve K Stegner, Nadeeka Lakshani, Madison R Kuns, Alba Ruiz-Aguirre et al.
2026-09-08 · DOI: 10.1021/acsenergylett.6c01894Designing Pitch-Derived Spherical Hard Carbon via Catalytic Aerobic Oxidation and Closed-Pore Regulation
Shuhui Li, Weihuang Wang, Rui Liu, Zheng Wang et al.
2026-09-07 · DOI: 10.1021/acsenergylett.6c01910Regulating Asynchronous Crystallization via Additive Coordination Enables Efficient Perovskite/Silicon Tandems
Taomiao Wang, Fei Wang, Shuangbiao Xia, Yutao Wang et al.
2026-09-07 · DOI: 10.1021/acsenergylett.6c02301Unraveling Thermal Accumulation in Perovskite/Silicon Tandems: Structure- and Material-Driven Heating in SHJ, TOPCon, and TBC Bottom Cells
Kaiyue Li, Xuan Chang, Xueliang Yang, Yanfeng Li et al.
2026-09-07 · DOI: 10.1021/acsenergylett.6c01614Toward Precision Nanochemistry in Halide Perovskite Quantum Dots
Kushagra Gahlot, Quinten A. Akkerman
2026-09-05 · DOI: 10.1021/acsenergylett.6c02167Tailoring Guest Symmetry for Efficient Charge Transport via Pre-structuring in Ternary Organic Solar Cells
Zhichao Mao, Haotian Hu, Jing Li, Jingyu Shi et al.
2026-09-04 · DOI: 10.1021/acsenergylett.6c01944Stabilizing Grain Boundaries by Flexible Bidirectional Multisite Hydrazide Cations toward High-Performance Inverted Perovskite Solar Cells
Linlin Lu, Zuolin Zhang, Dongmei He, Meirong Fu et al.
2026-09-03 · DOI: 10.1021/acsenergylett.6c01861Flammability Is Not the Whole Story: Rethinking Battery Safety
Ya You
2026-09-03 · DOI: 10.1021/acsenergylett.6c02478Mapping Solid Electrolyte Interphase Evolution and Lithium Deposition at Solid-State Interfaces by Operando Nano-focus WAXS
Yingying Yan, Liangzhen Liu, Yuxin Liang, Fabian A.C. Apfelbeck et al.
2026-09-03 · DOI: 10.1021/acsenergylett.6c01817Chemo-electrochemical Tandem Reduction Enables Eupolymer-Inorganic Solid-Electrolyte Interphases for Silicon-Based Anodes
Hao Zhang, Lu Wang, Long Chen, Xin He et al.
2026-09-02 · DOI: 10.1021/acsenergylett.6c022912025 Highlights of Achievements by Energy and Fuels Professionals: Advancing Energy Innovation through Transformative Materials and Leadership
Chunshan Song, Stanislaus S. Wong, Alan L. Chaffee, Yun Hang Hu et al.
2026-09-02 · DOI: 10.1021/acsenergylett.6c01682Intelligent Response and Dynamic Stress Equilibrium Structure Endow Lithium-Rich Oxide Cathodes with Long Cycle Life
Yufa Zhou, Shengnan He, Rui Zhang, Shaowu Lai et al.
2026-09-02 · DOI: 10.1021/acsenergylett.6c02095Triplet or Charge-Separated State? Distinguishing Long-Lived, Photogenerated Electronic States in SWCNT/MoS2 Heterojunctions
Leo Romanetz, M. Alejandra Hermosilla-Palacios, Debjit Ghoshal, Obadiah G. Reid et al.
2026-09-02 · DOI: 10.1021/acsenergylett.6c01923Reviews
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April 19, 2025 at 1:50 pm
April 19, 2025