Open Access
Issue |
E3S Web of Conf.
Volume 547, 2024
International Conference on Sustainable Green Energy Technologies (ICSGET 2024)
|
|
---|---|---|
Article Number | 03016 | |
Number of page(s) | 9 | |
Section | Energy | |
DOI | https://doi.org/10.1051/e3sconf/202454703016 | |
Published online | 09 July 2024 |
- A. Patel et al., Recent Advances in Hybrid Energy Storage Systems: Integration, Optimization, and Applications. IEEE Trans. Sustain. Energy. 14, 1 (2023). [Google Scholar]
- M. M. Rahman et al., Assessment of energy storage technologies: A review. Energy Conversion and Management. 223, (2020). [Google Scholar]
- E. Atawi et al., Recent Advances in Hybrid Energy Storage System Integrated Renewable Power Generation: Configuration, Control, Applications, and Future Directions. Batteries. 9, 1 (2022). [Google Scholar]
- A. Bharatee et al., Power Management Strategies in a Hybrid Energy Storage System Integrated AC/DC Microgrid: A Review. Energies. 15, 19 (2022). [Google Scholar]
- J. Du et al., Optimal scheduling of integrated energy system based on improved grey wolf optimization algorithm. Scientific Reports. 12, 1 (2022). [CrossRef] [Google Scholar]
- S. Biswas et al., Organic Supercapacitors as the Next Generation Energy Storage Device: Emergence, Opportunity, and Challenges. ChemPhysChem. 24, 3 (2022). [Google Scholar]
- V. S. Bhat et al., Capacitive dominated charge storage in supermicropores of self-activated carbon electrodes for symmetric supercapacitors. Journal of Energy Storage. 52 (2022). [Google Scholar]
- P. Ondrejka et al., Thin Films and Coatings for Energy Storage and Conversion: From Supercapacitors and Batteries to Hydrogen Generators. Coatings, 13 4 (2023). [Google Scholar]
- J. Jorgenson et al., Storage Futures Study: Grid Operational Impacts of Widespread Storage Deployment. (2022). [Google Scholar]
- Z. Mokrani et al., Power management strategy for photovoltaic system with hybrid storage (Batteries/Supercapacitors). Renewable Energy and Power Quality Journal. 21, 1 (2023). [Google Scholar]
- J. Jin et al., A Better Zn-Ion Storage Device: Recent Progress for Zn-Ion Hybrid Supercapacitors. Nano-Micro Letters. 14, 1 (2022). [CrossRef] [Google Scholar]
- X. Luo et al., Hybridizing Lead–Acid Batteries with Supercapacitors: A Methodology. Energies. 14, 2 (2021). [Google Scholar]
- S. Biswas et al., Organic Supercapacitors as the Next Generation Energy Storage Device: Emergence, Opportunity, and Challenges. ChemPhysChem. 24, 3 (2022). [Google Scholar]
- V. S. Bhat et al., Capacitive dominated charge storage in supermicropores of self-activated carbon electrodes for symmetric supercapacitors. Journal of Energy Storage. 52 (2022). [Google Scholar]
- M. S. Zantye et al., A Systematic Framework for the Integration of Carbon Capture, Renewables and Energy Storage Systems for Sustainable Energy. Computer Aided Chemical Engineering. (2022). [Google Scholar]
- P. Ondrejka et al., Thin Films and Coatings for Energy Storage and Conversion: From Supercapacitors and Batteries to Hydrogen Generators. Coatings. 13, 4 (2023). [Google Scholar]
- J. Jorgenson et al., Storage Futures Study: Grid Operational Impacts of Widespread Storage Deployment. (2022). [Google Scholar]
- Z. Mokrani et al., Power management strategy for photovoltaic system with hybrid storage (Batteries/Supercapacitors). Renewable Energy and Power Quality Journal. 21, 1 (2023). [Google Scholar]
- Y. Zhou et al., Two-birds-one-stone: multifunctional supercapacitors beyond traditional energy storage. Energy & Environmental Science. 14, 4 (2021). [Google Scholar]
- S. R. Salkuti, Emerging and Advanced Green Energy Technologies for Sustainable and Resilient Future Grid. Energies. 15, 18 (2022). [Google Scholar]
- C. White-Nockleby, Grid-scale batteries and the politics of storage. Social Studies of Science. 52, 5 (2022). [Google Scholar]
- H. Priyadarshi et al., Green Technology Solutions for Energy Storage Devices. Energy Conversion and Green Energy Storage. (2022). [Google Scholar]
- Revealing energy storage mechanism of CsPbBr3 perovskite for ultra-stable symmetric supercapacitors. Energy Materials (2023). [Google Scholar]
- C. Savard et al., Electric power generation and storage between research status, taxonomy and competing interest: A review. Global Journal of Business, Economics and Management: Current Issues. 12, 3 (2022). [Google Scholar]
- K. B. Donnelly, Storing the future of energy: Navigating energy storage policy to promote clean energy generation. Environmental Progress & Sustainable Energy. 42, 2 (2023). [CrossRef] [Google Scholar]
- L. Martellucci et al., Experimental Analysis and Simulation of Mixed Storage with Lithium-Ion Batteries and Supercapacitors for a PHEV. Energies. 16, 9 (2023). [Google Scholar]
- F. Díaz-González et al., A hybrid energy storage solution based on supercapacitors and batteries for the grid integration of utility scale photovoltaic plants. Journal of Energy Storage. vol. 51, (2022). [Google Scholar]
- R. R. Thakoordeen, Viability of supercapacitors for energy storage to mitigate renewable energy sources intermittency. [Google Scholar]
- Z. Stevic et al., Supercapacitors: The Innovation of Energy Storage. Updates on Supercapacitors, Jan. (2023). [Google Scholar]
- V. Correia et al., Sustainable Energy Storage Devices and Device Design for in the Scope of Internet of Things. Sustainable Energy Storage in the Scope of Circular Economy. (2023). [Google Scholar]
Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.
Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.
Initial download of the metrics may take a while.