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September 10, 2025Science Advances54 citationsOpen Access

High-resolution liquid metal–based stretchable electronics enabled by colloidal self-assembly and microtransfer printing

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XLXuan LiEREric RytkinQZQinai Zhao

Key Points

  • The method achieves micropatterning of liquid metal films with 5 micrometer features, enhancing performance and scalability.
  • Exceptional electromechanical properties, with conductivity at 2.4 × 10 6 siemens per meter and over 1200% stretchability, are demonstrated.
  • Employing electrostatic self-assembly and microtransfer printing techniques allows for advanced device architectures.
  • Applications include highly stretchable sensors and cardiac mapping microelectrode arrays for human heart diagnostics.

Abstract

Liquid metal–based stretchable electronics offer high electrical performance and seamless integration with deformable systems but face challenges in achieving scalable, high-resolution patterning. In this work, we present a method for micropatterning liquid metal particle (LMP) films with feature sizes as small as 5 micrometers by integrating electrostatically enabled colloidal self-assembly and microtransfer printing. The resulting cold-welded LMP micropatterns exhibit exceptional electromechanical properties, high conductivity (2.4 × 10 6 siemens per meter), stretchability (more than 1200%), and strain- and pressure-insensitive resistance, owing to their multiscale and dynamic morphologies. Demonstrations in highly stretchable strain sensors and cardiac mapping devices highlight the capabilities of this method for creating high-performance, highly stretchable electronic systems. Notably, balloon catheter–integrated LMP microelectrode arrays show low impedance under extreme deformations and enable high-resolution endocardial electrogram mapping inside the human heart. This method expands the potential of liquid metal–based stretchable electronics for a wide range of applications, including implantable biomedical devices and soft robotics.

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Cite This Study

Li et al. (2025) studied this question.

synapsesocial.com/papers/68c1d9a154b1d3bfb60fb9e8https://doi.org/10.1126/sciadv.adw3044
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