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3D morphable systems via deterministic microfolding for vibrational sensing, robotic implants, and reconfigurable telecommunication.

Lin ZhangZongwen ZhangHannah WeisbeckerHaifeng YinYihan LiuTianhong HanZiheng GuoMatt BerryBinbin YangXu GuoJacob AdamsZhaoqian XieWubin Bai
Published in: Science advances (2022)
DNA and proteins fold in three dimensions (3D) to enable functions that sustain life. Emulation of such folding schemes for functional materials can unleash enormous potential in advancing a wide range of technologies, especially in robotics, medicine, and telecommunication. Here, we report a microfolding strategy that enables formation of 3D morphable microelectronic systems integrated with various functional materials, including monocrystalline silicon, metallic nanomembranes, and polymers. By predesigning folding hosts and configuring folding pathways, 3D microelectronic systems in freestanding forms can transform across various complex configurations with modulated functionalities. Nearly all transitional states of 3D microelectronic systems achieved via the microfolding assembly can be easily accessed and modulated in situ, offering functional versatility and adaptability. Advanced morphable microelectronic systems including a reconfigurable microantenna for customizable telecommunication, a 3D vibration sensor for hand-tremor monitoring, and a bloomable robot for cardiac mapping demonstrate broad utility of these assembly schemes to realize advanced functionalities.
Keyphrases
  • single molecule
  • molecular dynamics simulations
  • left ventricular
  • high frequency
  • cell free
  • density functional theory
  • risk assessment
  • molecular dynamics
  • nucleic acid