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April 28, 2026Nano Energy3 citationsOpen Access

Liquid Metal-Enabled Energy Harvesting for Self-Powered Flexible Electronics

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SGSurya Kanta GhadeiInstitute of Minerals and Materials TechnologyAZAli ZavabetiThe University of MelbourneMBMadhu BhaskaranRMIT University

Key Points

  • This review aims to explore the advances in liquid metal technologies for flexible energy harvesting and self-powered electronic systems.
  • Reviewed the fabrication of stretchable and reconfigurable liquid metal electrodes.
  • Discussed integration with elastomeric matrices for various energy harvesting modalities.
  • Analyzed the application of liquid metals in wearable electronics and IoT systems.
  • Highlighted the creation of high-performance self-powered systems using liquid metals.
  • Outlined barriers including oxide instability and adhesion affecting scalability.
  • Demonstrated successful integration into advanced curvilinear geometries for diverse applications.

Abstract

The escalating demand for sustainable, flexible, and miniaturized power sources to energize the expanding ecosystem of wearable electronics, implantable, and distributed sensor networks calls for a paradigm shift in energy harvesting technologies. Conventional rigid and brittle materials inherently constrain the integration, flexibility, and functionality in real-world environments. The synergy of mechanical bendability, high electrical conductivity, and fluidic adaptability in liquid metals (LMs) is emerging as a key enabler for self-powered flexible electronics. This review outlines an advancement in strategy exploiting the unique properties of liquid metals to reshape flexible energy harvesting and realize truly self-powered systems. A comprehensive review of the fabrication of stretchable and reconfigurable LM electrodes, their integration with elastomeric matrices, is discussed with their roles in harvesting biomechanical, vibrational, electromagnetic, and photon energies towards autonomous and flexible electronics. Additionally, we discuss new versatile LM-enabled architectures that enable straightforward integration into sophisticated, curvilinear geometries, demonstrating autonomous, self-powered devices in the form of epidermal sensors, human-machine interface, e-skin, e-textiles, the Internet of Things (IoT), and environmental and infrastructural monitoring. This study not only presents a multifaceted material platform for flexible energy harvesting with high performance, but it also lays a basis for a new class of robust, conformable, and truly self-powered electronic systems instrumental to the future of ubiquitous sensing and human-machine interaction. • Paradigm shift: liquid metals redefine flexible energy harvesting • Unified platform for multimodal, self-powered energy systems • Seamless integration with e-skin, wearables, and IoT platforms • Key barriers: oxide instability, adhesion, scalability, supply risk • Toward autonomous, durable, and sustainable electronic ecosystems

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Cite This Study

Ghadei et al. (2026) studied this question.

synapsesocial.com/papers/69f04e08727298f751e7202bhttps://doi.org/10.1016/j.nanoen.2026.111988
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