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Bio-Inspired Macromolecular Ordering of Elastomers for Enhanced Contact Electrification and Triboelectric Energy Harvesting

  • Andris Šutka*
  • , Linards Lapčinskis
  • , Osvalds Verners
  • , Līva Ģērmane
  • , Krišjānis Šmits
  • , Arturs Pludons
  • , Sergejs Gaidukovs
  • , Ilze Jerāne
  • , Mārtiņš Zubkins
  • , Kaspars Pudžs
  • , Peter Cameron Sherrell
  • , Juris Blums
  • *Šī darba korespondējošais autors
  • Riga Technical University
  • University of Melbourne

Zinātniskās darbības rezultāts: Devums žurnālamZinātniskais raksts (žurnālā)koleģiāli recenzēts

20 Atsauces (Scopus)

Kopsavilkums

Triboelectrification of polymers enables mechanical energy harvesting in triboelectric generators, droplet generators, and ferroelectrets. Herein, triboelectric polymers, inspired by the ordering in spider-silk, with strongly enhanced contact electrification are presented. The ordering in polyether block amide (PEBA) is induced by the addition of inorganic goethite (α-FeOOH) nanowires that form H-bonds with the elastomeric matrix. The addition of as little as 0.1 vol% of α-FeOOH into PEBA increases the surface charge by more than order of magnitude (from 0.069 to 0.93 nC cm–2). The H-bonds between α-FeOOH and PEBA promote the formation of inclusions with higher degree of macromolecular ordering, analogous to the structure of spider silk. The formation of these inclusions is proven via nanoindentation hardness measurements and correlated with H-bond-induced chemical changes by Fourier transform infrared spectroscopy and direct scanning calorimetry. Theoretical studies reveal that the irregularity in hardness provides stress accumulation on the polymer surface during contact-separation. Subsequent molecular dynamic studies demonstrate that stress accumulation promotes the mass-transfer mechanism of contact electrification. The proposed macromolecular structure design provides a new paradigm for developing materials for applications in mechanical energy harvesting.

OriģinālvalodaAngļu
Raksta numurs2200162
ŽurnālsAdvanced Materials Technologies
Sējums7
Izdevuma numurs10
DOIs
Publikācijas statussPublicēts - 10 okt. 2022

OECD Zinātnes nozare

  • 1.3 Fizika un astronomija
  • 2.5 Materiālzinātne

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