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March 25, 2026Materials2 citationsOpen Access

Anode-Less (Anode-Free) Batteries: From Fundamental Principles to Practical Pathways Toward Solid-State Implementation

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MBManuela C. BaptistaUniversidade do PortoMBMaria Helena BragaUniversidade do Porto

Key Points

  • This review aims to provide an integrative overview of anode-less battery architectures and their performance challenges.
  • Overview of anode-less cell technologies, both liquid and solid electrolytes.
  • Discussion of advanced characterization techniques for analyzing battery behavior.
  • Examination of system design strategies for optimizing performance across various battery types.
  • Anode-less batteries show improved energy density and safety compared to traditional designs.
  • Identified critical challenges include unstable solid-electrolyte interphases and dendrite formation.
  • Introduced a development pyramid linking research priorities with practical implementation pathways.

Abstract

Anode-less battery architectures, which eliminate the host anode material, have attracted considerable attention as a promising approach to increase energy density, simplify cell manufacturing, and improve safety in next-generation energy storage systems. This review provides a structured and integrative overview on the current research landscape of anode-less cells, spanning both liquid- and solid-electrolyte technologies. It first introduces the fundamental principles, key advantages, and inherent challenges of the anode-less concept. Advanced characterization techniques, including electrochemical, interfacial, morphological, and operando approaches, are then discussed as essential tools for probing metal plating/stripping behavior and degradation mechanisms. The core of the review examines how system design governs performance, addressing strategies for liquid electrolytes, including current collector design, electrolyte formulation, and deposition control, as well as solid electrolytes, with an emphasis on interfacial engineering, fundamental limitations, and extensions to Na- and K-based batteries. By integrating insights across these systems, the review identifies critical challenges, including unstable solid-electrolyte interphases, dendrite formation, and interfacial contact loss. Finally, a development pyramid is introduced as a conceptual framework linking fundamental research to practical implementation, outlining key priorities from interface control and full-cell compatibility to long-term reliability while also highlighting industrial pathways toward hybrid and fully solid-state anode-less batteries.

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Cite This Study

Baptista et al. (2026) studied this question.

synapsesocial.com/papers/69c37bb3b34aaaeb1a67e69ehttps://doi.org/10.3390/ma19061232
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