Liquid Metals for Reconfigurable Bioelectronics
Жидкие металлы для перенастраиваемой биoэлектроники
2026-03-20
SCID: 54.1/wbbfyyfv
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implantable and wearable systemsliquid metalsmulti-stimuli responsivenessreconfigurable bioelectronics
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Abstract (AI)
Future bioelectronic technologies must evolve beyond passive softness toward active reconfigurability, enabling intelligent interfaces that adapt to dynamic physiological and environmental changes. However, the inherently static architectures of most current devices hinder such adaptive reconfiguration or performance tuning, leading to a functional mismatch between dynamic biological systems and static electronic architectures. To bridge this gap, reconfigurable bioelectronics have emerged as a transformative paradigm capable of dynamically modulating their physical form and function in response to external or physiological stimuli. Liquid metals (LMs)-combining deformability, tunable stiffness, high electrical/thermal conductivity, multi-stimuli responsiveness, and biocompatibility-offer a unique material platform for realizing intrinsic reconfigurability without structural complexity. By leveraging their material-level reconfigurability, LM-based bioelectronics achieve robust performance, versatile functionality, and dynamic biointegration, enabling multifunctional diagnostic, therapeutic, and interactive systems. This review provides a comprehensive overview of LM-based reconfigurable bioelectronics, encompassing fundamental material properties, fabrication and design strategies, and major reconfiguration mechanisms. It further highlights emerging biomedical applications, ranging from implantable and wearable systems to soft robotics and haptic interfaces, and discusses key challenges and future directions for advancing LM-based bioelectronics toward clinically viable, intelligent, and multifunctional platforms.
Key Findings
1
Key challenges and future directions are discussed to advance LM-based bioelectronics toward clinically viable, intelligent, and multifunctional platforms.
2
LM-based bioelectronics enable robust performance, versatile functionality, and dynamic biointegration, supporting multifunctional diagnostic, therapeutic, and interactive systems.
3
Liquid metals (LMs) provide a unique material platform for intrinsic reconfigurability due to deformability, tunable stiffness, high electrical/thermal conductivity, multi-stimuli responsiveness, and biocompatibility.
4
Most current bioelectronic devices have static architectures that hinder adaptive reconfiguration and performance tuning, causing mismatch with dynamic biological systems.
5
Reconfigurable bioelectronics are needed to adapt to dynamic physiological and environmental changes beyond passive softness.
6
The review synthesizes LM material properties, fabrication/design strategies, major reconfiguration mechanisms, and emerging applications including implantable/wearable systems, soft robotics, and haptic interfaces.
Research Object
Liquid metal-based reconfigurable bioelectronic systems
Research Subject
Material-level reconfigurability and related properties, fabrication/design strategies, reconfiguration mechanisms, and their impact on dynamic biointegration and multifunctional biomedical performance
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2026-03-20
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