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March 13, 2026Sustainability7 citationsOpen Access

Hybrid Energy Storage Systems as Circular and Sustainable Enablers for Electric Mobility: A Comparative Assessment of Batteries and Supercapacitors

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SASalik AhmedPSPaolo SospiroMGMichelangelo-Santo Gulino

Key Points

  • The aim is to compare and assess the performance and sustainability of batteries, supercapacitors, and their hybrid systems for electric mobility.
  • Systematic literature review of energy storage technologies
  • Ten performance and sustainability criteria evaluated
  • Scoring framework with sensitivity analysis applied to rank technologies
  • Focus on hybrid energy storage systems integrating batteries and supercapacitors
  • Hybrid energy storage systems can improve energy efficiency by up to 20%
  • Battery lifetime can be extended by 30-50% with hybrid integration
  • Reduction in raw material extraction, electronic waste, and lifecycle costs
  • Analysis highlights that integration of technologies is more effective than using either alone

Abstract

Electric vehicles (EVs) represent a key pathway toward reducing greenhouse gas emissions and fossil fuel dependence. Although significant advances have been achieved in energy storage technologies for EVs, a structured comparative assessment that jointly evaluates batteries, supercapacitors, and their hybridisation remains lacking. This review addresses that gap by systematically comparing lithium-ion, lead-acid, and nickel-based batteries with electrochemical double-layer capacitors (EDLCs), pseudocapacitors, and hybrid capacitors across ten performance and sustainability criteria. A literature-informed scoring framework, supplemented by sensitivity analysis under alternative weighting scenarios, is employed to rank the technologies. Particular attention is given to Hybrid Energy Storage Systems (HESS), which combine the high energy density of lithium-ion batteries with the high power density and long cycle life of supercapacitors. The review synthesises evidence that HESS can improve overall energy efficiency by up to 20% and extend battery lifetime by 30–50%, thereby reducing raw-material extraction, electronic waste, and lifecycle cost. Second-life pathways and circular-economy implications are discussed in depth. The findings demonstrate that neither batteries nor supercapacitors alone can satisfy the full spectrum of EV energy demands; instead, their integration within HESS offers the most balanced, sustainable, and economically viable solution. This work provides actionable insights for engineers, policymakers, and stakeholders engaged in next-generation sustainable mobility.

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Cite This Study

Ahmed et al. (2026) studied this question.

synapsesocial.com/papers/69b3acf302a1e69014ccf0f5https://doi.org/10.3390/su18062686
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