4.8 Article

Ultrahigh Elastic Strain Energy Storage in Metal-Oxide-Infiltrated Patterned Hybrid Polymer Nanocomposites

Journal

NANO LETTERS
Volume 17, Issue 12, Pages 7416-7423

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.7b03238

Keywords

Elastic strain energy storage; infiltration synthesis; organic-inorganic hybrid nanocomposite; nanopillars; MEMS; resonator; actuator

Funding

  1. UConn Start-Up Grant
  2. Institute of Materials Science at University of Connecticut
  3. U.S. Department of Energy, Office of Basic Energy Sciences [DE-SC0012704]

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Modulus of resilience, the measure of a material's ability to store and release elastic strain energy, is critical for realizing advanced mechanical actuation technologies in micro/nanoelectromechanical systems. In general, engineering the modulus of resilience is difficult because it requires asymmetrically increasing yield strength and Young's modulus against their mutual scaling behavior. This task becomes further challenging if it needs to be carried out at the nanometer scale. Here, we demonstrate organic-inorganic hybrid composite nanopillars with one of the highest modulus of resilience per density by utilizing vapor-phase aluminum oxide infiltration in lithographically patterned negative photoresist SU-8. In situ nanomechanical measurements reveal a metal-like high yield strength (similar to 500 MPa) with an unusually low, foam-like Young's modulus (similar to 7 GPa), a unique pairing that yields ultrahigh modulus of resilience, reaching up to similar to 24 MJ/m(3) as well as exceptional modulus of resilience per density of similar to 13.4 kJ/kg, surpassing those of most engineering materials. The hybrid polymer nanocomposite features lightweight, ultrahigh tunable modulus of resilience and versatile nanoscale lithographic patternability with potential for application as nanomechanical components which require ultrahigh mechanical resilience and strength.

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