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Structured nanoscale metallic glass fibres with extreme aspect ratios

  • Wei Yan
  • , Inès Richard
  • , Güven Kurtuldu
  • , Nicholas D. James
  • , Giuseppe Schiavone
  • , Jordan W. Squair
  • , Tung Nguyen‐Dang
  • , Tapajyoti Das Gupta
  • , Yunpeng Qu
  • , Jake D. Cao
  • , Reinis Ignatans
  • , Stéphanie P. Lacour
  • , Vasiliki Tileli
  • , Grégoire Courtine
  • , Jörg F. Löffler
  • , Fabien Sorin*
  • *Šī darba korespondējošais autors
  • Swiss Federal Institute of Technology Lausanne
  • Massachusetts Institute of Technology
  • Swiss Federal Institute of Technology Zurich
  • University of Lausanne

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

89 Atsauces (Scopus)

Kopsavilkums

Micro- and nanoscale metallic glasses offer exciting opportunities for both fundamental research and applications in healthcare, micro-engineering, optics and electronics. The scientific and technological challenges associated with the fabrication and utilization of nanoscale metallic glasses, however, remain unresolved. Here, we present a simple and scalable approach for the fabrication of metallic glass fibres with nanoscale architectures based on their thermal co-drawing within a polymer matrix with matched rheological properties. Our method yields well-ordered and uniform metallic glasses with controllable feature sizes down to a few tens of nanometres, and aspect ratios greater than 1010. We combine fluid dynamics and advanced in situ transmission electron microscopy analysis to elucidate the interplay between fluid instability and crystallization kinetics that determines the achievable feature sizes. Our approach yields complex fibre architectures that, combined with other functional materials, enable new advanced all-in-fibre devices. We demonstrate in particular an implantable metallic glass-based fibre probe tested in vivo for a stable brain–machine interface that paves the way towards innovative high-performance and multifunctional neuro-probes.

OriģinālvalodaAngļu
Lapas (no-līdz)875-882
Lapu skaits8
ŽurnālsNature Nanotechnology
Sējums15
Izdevuma numurs10
DOIs
Publikācijas statussPublicēts - 1 okt. 2020
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