4.8 Article

Bidirectional Self-Folding with Atomic Layer Deposition Nanofilms for Microscale Origami

Journal

NANO LETTERS
Volume 20, Issue 7, Pages 4850-4856

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.0c00824

Keywords

Atomic layer deposition; origami; self-assembly; microstructures; nanofabrication

Funding

  1. NSF MRSEC program [DMR-1719875]
  2. U.S. Army Research Office [ARO W911NF-18-1-0032]
  3. Cornell Center for Materials Research
  4. Watt W. Webb Fellowship at Kavli Institute at Cornell for Nanoscale Science
  5. National Science Foundation [NNCI-1542081]

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Origami design principles are scale invariant and enable direct miniaturization of origami structures provided the sheets used for folding have equal thickness to length ratios. Recently, seminal steps have been taken to fabricate microscale origami using unidirectionally actuated sheets with nanoscale thickness. Here, we extend the full power of origami-inspired fabrication to nanoscale sheets by engineering bidirectional folding with 4 nm thick atomic layer deposition (ALD) SiNx-SiO2 bilayer films. Strain differentials within these bilayers result in bending, producing microscopic radii of curvature. We lithographically pattern these bilayers and localize the bending using rigid panels to fabricate a variety of complex micro-origami devices. Upon release, these devices self-fold according to prescribed patterns. Our approach combines planar semiconductor microfabrication methods with computerized origami design, making it easy to fabricate and deploy such microstructures en masse. These devices represent an important step forward in the fabrication and assembly of deployable micromechanical systems that can interact with and manipulate micro- and nanoscale environments.

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