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February 12, 2026ACS Nano2 citations

Large-Scale and High-Resolution Patterning of Magnetic Liquid Metal Nanohybrid for Stretchable Circuits

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MKMoo Hyun KimHKHeesuk KimJJJaemog Jung

Key Points

  • The aim is to enhance the patterning and integration of liquid metal in stretchable electronic devices.
  • Modified surface of liquid metal with sub-10 nm nanomagnets.
  • Applied a patterned external magnetic field for MagLP assembly.
  • Conducted wafer-scale production using a photolithographically fabricated magnetic template.
  • Achieved high-resolution patterning of liquid metal electrodes at thicknesses around 1 μm.
  • Demonstrated electrical conductivity up to approximately 10,000 S/cm.
  • Successful transfer of patterned MagLPs onto stretchable substrates.

Abstract

The pursuit of highly flexible and stretchable electronics has generated significant interest in liquid metal (LM) materials due to their remarkable mechanical and electrical properties. However, fully exploiting LM's potential has been hampered by challenges in patterning them at high-resolution and integrating them on a large-scale, thereby limiting their control and practical applications. By modifying the surface of the LM oxide, we introduced sub-10 nm nanomagnets on the LM surface, creating magnetic LM nanohybrid particles (MagLPs). Applying a patterned external magnetic field, we achieved precise assembly of the MagLPs, enabling the high-resolution patterning of LM electrodes at ultrathin thicknesses (∼1 μm). The patterned MagLPs were subsequently transferred onto a stretchable substrate and demonstrated excellent mechanical and electrical characteristics (∼10 000 S/cm). Utilizing a photolithographically fabricated magnetic template, MagLP networks were patterned in wafer-scale production. This technique offers an unconventional engineering approach to the fabrication of stretchable electronics.

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Cite This Study

Kim et al. (2026) studied this question.

synapsesocial.com/papers/698d6d695be6419ac0d523fchttps://doi.org/10.1021/acsnano.5c12929
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