Energy Storage Systems: Scope, Technologies, Characteristics, Progress, Challenges, and Future Suggestions—Renewable Energy Community Perspectives
Abstract
:1. Introduction
1.1. Background Study
1.2. Contributions of Work and Paper Organizations
2. Energy Storage Systems Scope and Services
3. ESS Technologies Classification and Characteristics
3.1. Mechanical Energy Storage Systems
3.2. Electric Energy Storage Systems
3.3. Electrochemical Energy Storage Systems
3.4. Thermal Energy Storage Systems
3.5. Chemical Energy Storage Systems
3.6. Hybrid Energy Storage Systems
4. Progress
5. Challenges
5.1. High Initial Costs
5.2. Limited Energy Capacity
5.3. Technological Limitations
5.4. Safety and Environmental Impact
5.5. Battery Degradation
5.6. Battery SOC Impact
5.7. ESS Sizing, Cost, and Allocation
6. Discussion
- Various ESS technology options are available, but from the RECs’ perspective, Li-ion and sodium-ion small-scale RECs (households, villages) are affordable, small, and simple to incorporate. For medium-sized RECs (towns, islands), Li-ion, VRFB, scalable for MG operation, and long cycle life. As for the grid-connected RECs, flywheels, and Li-ion are perfect for supplementary grid services and peak shaving. Moreover, the national and regional bulk storage requirements include PHES for energy security and seasonal balance. Also, EV batteries for stationary storage in RECs could reduce expenses and e-waste by reusing. So, as we move toward decarbonized energy systems, RECs will need to strategically combine a variety of energy storage technologies to optimize RE use, improve dependability, and guarantee energy autonomy.
- Promoting new technology, like hybrid ESS usage, is also necessary. For more versatility, combine Li-ion, sodium-ion, and solid-state batteries with thermal storage, pumped hydro, or hydrogen. One example of a supporting policy or law that governments can implement to promote the growth of RECs is community-based ESSs and RESs targets. Even if adding new technology is expensive, investors find it difficult to pay for it. The government or funding organizations should, however, assist in this situation by providing loans or subsidies to ensure that RECs operate effectively.
- Advanced transmission and distribution networks are necessary to manage the decentralized storage and energy-sharing within RECs and make investments in smart grids with bidirectional energy flow. Advanced energy management systems (EMS) are also required in practice to optimize the real-time supply and demand balancing and energy flow. Additionally, the integration of Vehicle-to-Grid (V2G) could be the best opportunity to make use of electric vehicles (EVs) to store energy on the go and return extra power to the REC via the grid.
- DSM strategies for economic viability are required to be improved to promote load shifting to lower peak demand and improve storage effectiveness. Also, energy trading (Like P2P or other) in RECs could be facilitated using smart contracts like blockchain technology.
- There must be proper planning and design focusing on the optimal sizing and placement, and their optimal operation to initialize the projects of ESS integrated with other RESs used in RECs, having benefits like maximizing self-consumption and energy sharing within the community.
7. Conclusions and Future Suggestions
- Policy and regulatory recommendations are very important to address here, such as reducing the administrative issues in RECs to expedite the ESS approvals and streamline bureaucratic procedures for ESS in RECs projects, making ownership and grid access regulations clear to establish explicit guidelines for self-consumption, energy sharing, and market participation in REC, standardizing the ESS Grid Connection Policies to enable the smooth integration of ESSs in RECs in all EU member state. Apart from this, financial rewards and market changes are also necessary, like lowering upfront expenses and offering targeted incentives like tax discounts, CAPEX subsidies, or low-interest loans, promoting energy-sharing frameworks, to make REC storage profitable by using feed-in tariffs, dynamic pricing, and advantageous net metering.
- Reduction in cost barriers and drawing positive intentions for the investments is important to highlight. There should be public–private partnerships to finance the implementation of ESSs by promoting collaborative investments between governments, private investors, and energy cooperatives. Likewise, financing research and development for the advanced ESS technologies will help boost EU investments in green hydrogen storage, next-generation batteries, and substitute materials.
- Community involvement and awareness are highly recommended. It should be only effective when the seminars are arranged for the residents on the advantages of energy sharing and the role of ESS. Providing them the transparent governance mechanisms to support community-led energy initiatives and ensuring equitable access to ESS solutions, especially for low-income households, is the goal of inclusive energy policies.
- Environmental and safety issues for using ESS technologies need to be addressed. For this, precise instructions must be provided to dispose of, recycle, and reuse the batteries. Emergency response plans and safety requirements for ESS installations should also be provided.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Acronyms | |
BESS | battery energy storage system |
CEC | citizen energy community |
CES | chemical energy storage |
DCS | distributed control systems |
DSM | demand side management |
DR | demand response |
DREs | distributed renewable energy resources |
DGs | distributed generators |
EES | electrical energy storage |
ESS/ESSs | energy storage system/systems |
EC | energy community |
EMS | energy management system |
ECES | electrochemical energy storage |
EU | European union |
GHG | greenhouse gases |
HESET | hydrogen energy storage evaluation tool |
IEC | International Electrotechnical Commission |
IEEE | institute of electrical and electronics engineers |
ITU | international telecommunication union |
MES | mechanical energy storage |
PV | photovoltaic |
PHS | pumped hydro storage |
RE/RES/RESs | renewable energy/renewable energy source/renewable energy sources |
REC | renewable energy community |
RED II | renewable energy directive |
SMES | superconducting magnetic energy storage |
TIA | telecommunications industry association |
ToU | time of use |
TES | thermal energy storage |
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Types and Characteristics of Mechanical Energy Storage Systems | ||
---|---|---|
Flywheel [75,76,77,78,79] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Pumped Hydro energy storage system (PHES) [75,78,79,80,81] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Compressed Air energy storage system (CAES) [78,79,82,83] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
|
Types and Characteristics of Electrical Energy Storage Systems | ||
---|---|---|
Capacitors [80,81,85] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Supercapacitors [73,79,86] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Superconducting magnetic energy storage (SMES) [76,87] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Electric vehicles (EVs) [88,89,90] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
|
Types and Characteristics of Electrochemical Energy Storage Systems | ||
---|---|---|
Lead-acid [74,79,98,99] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
NaS [68,74,79,100,101] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Li-Ion [74,79,80] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Flow Battery [74,102,103] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
NiCd [68,74,79] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
|
Types and Characteristics of Thermal Energy Storage Systems | ||
---|---|---|
Sensible heat storage systems (SHSS) [79,104,105] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Latent heat storage system (LHSS) [79,105,106,107] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Thermochemical energy storage systems (TCESS) [75,80,108] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
|
Types and Characteristics of Chemical Energy Storage Systems | ||
---|---|---|
Hydrogen energy Storage [74,78,109,110,111] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Biofuels [74,112] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Ammonia Storage [74,113] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
| |
Aluminum energy storage [74,114] | Description and Features |
|
Limitations |
| |
Applications (RE system/Others) |
|
ESS Type | Capacity (GW) | Year (2023) and Source | ||
IRENA | DoE | IEA | ||
PHES | 181.7 | ✓ | ||
Compressed Air | 1.622 | ✓ | ||
FES | 0.973 | ✓ | ||
Nas | 0.316 | ✓ | ||
Lead acid | 0.035 | ✓ | ||
NiCd | 0.027 | ✓ | ||
Li-ion | 0.02 | ✓ | ||
Flow Batteries | 0.003 | ✓ |
Reference | Year | Technology | Optimization | Sensitivity Analysis | Simulation | Modeling/Design/Operation | Energy Consumption/ Self-Consumption | Energy Sharing | Economic Concern | Environmental Concern | Outcomes/Comments | |||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Solar/Wind/Other | ESSs | Sizing/Allocation | Management | Other | ||||||||||
[129] | 2025 | ✓ | ✓ | − | ✓ | ✓ | ✓ | ✓ | − | ✓ | − | − | − | + |
[66] | 2025 | ✓ | ✓ | − | − | ✓ | − | ✓ | − | ✓ | ✓ | ✓ | − | + |
[130] | 2025 | ✓ | ✓ | ✓ | − | − | − | ✓ | − | ✓ | ✓ | ✓ | − | + |
[131] | 2025 | ✓ | ✓ | − | − | − | − | ✓ | − | ✓ | − | ✓ | − | + |
[132] | 2025 | ✓ | ✓ | ✓ | − | − | ✓ | − | − | − | − | ✓ | − | ± |
[133] | 2025 | ✓ | ✓ | − | − | − | ✓ | − | ✓ | − | ✓ | ✓ | ✓ | + |
[134] | 2024 | ✓ | ✓ | − | − | − | − | − | ✓ | ✓ | − | ✓ | − | ± |
[135] | 2024 | ✓ | ✓ | − | − | ✓ | ✓ | − | ✓ | − | − | √ | ✓ | + |
[136] | 2024 | ✓ | ✓ | − | − | ✓ | − | ✓ | ✓ | − | − | − | − | + |
[137] | 2024 | ✓ | ✓ | − | − | − | − | - | ✓ | ✓ | − | ✓ | − | + |
[138] | 2024 | ✓ | ✓ | − | − | − | − | ✓ | ✓ | − | − | ✓ | − | ± |
[139] | 2024 | ✓ | ✓ | − | − | ✓ | − | ✓ | ✓ | ✓ | − | ✓ | ✓ | + |
[140] | 2024 | ✓ | ✓ | − | − | ✓ | − | − | − | − | − | ✓ | − | ± |
[141] | 2024 | ✓ | ✓ | − | − | ✓ | − | − | ✓ | ✓ | ✓ | ✓ | − | + |
[142] | 2023 | ✓ | ✓ | − | − | ✓ | − | ✓ | − | − | ✓ | ✓ | ✓ | ± |
[143] | 2023 | ✓ | ✓ | − | − | ✓ | − | ✓ | ✓ | − | − | ✓ | − | ± |
[144] | 2023 | − | ✓ | − | ✓ | − | − | − | ✓ | − | − | ✓ | − | + |
[145] | 2023 | ✓ | ✓ | − | − | − | − | − | − | − | − | ✓ | − | − |
[146] | 2023 | − | ✓ | − | − | − | − | − | − | ✓ | − | ✓ | − | + |
[147] | 2023 | ✓ | ✓ | − | − | ✓ | − | − | ✓ | − | − | ✓ | − | ± |
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Ahmed, S.; D’Angola, A. Energy Storage Systems: Scope, Technologies, Characteristics, Progress, Challenges, and Future Suggestions—Renewable Energy Community Perspectives. Energies 2025, 18, 2679. https://doi.org/10.3390/en18112679
Ahmed S, D’Angola A. Energy Storage Systems: Scope, Technologies, Characteristics, Progress, Challenges, and Future Suggestions—Renewable Energy Community Perspectives. Energies. 2025; 18(11):2679. https://doi.org/10.3390/en18112679
Chicago/Turabian StyleAhmed, Shoaib, and Antonio D’Angola. 2025. "Energy Storage Systems: Scope, Technologies, Characteristics, Progress, Challenges, and Future Suggestions—Renewable Energy Community Perspectives" Energies 18, no. 11: 2679. https://doi.org/10.3390/en18112679
APA StyleAhmed, S., & D’Angola, A. (2025). Energy Storage Systems: Scope, Technologies, Characteristics, Progress, Challenges, and Future Suggestions—Renewable Energy Community Perspectives. Energies, 18(11), 2679. https://doi.org/10.3390/en18112679