Structural reinforcement of microvascular networks using electrostatic layer-by-layer assembly with halloysite nanotubes


Autoria(s): Olugebefola, Solar C.; Hamilton, Andrew; Fairfield, Daniel J.; Sottos, Nancy R.; White, Scott R.
Data(s)

28/01/2014

Resumo

We demonstrate a method for tailoring local mechanical properties near channel surfaces of vascular structural polymers in order to achieve high structural performance in microvascular systems. While synthetic vascularized materials have been created by a variety of manufacturing techniques, unreinforced microchannels act as stress concentrators and lead to the initiation of premature failure. Taking inspiration from biological tissues such as dentin and bone, these mechanical deficiencies can be mitigated by complex hierarchical structural features near to channel surfaces. By employing electrostatic layer-by-layer assembly (ELbL) to deposit films containing halloysite nanotubes onto scaffold surfaces followed by matrix infiltration and scaffold removal, we are able to controllably deposit nanoscale reinforcement onto 200 micron diameter channel surface interiors in microvascular networks. High resolution strain measurements on reinforced networks under load verify that the halloysite reduces strain concentrations and improves mechanical performance.

Identificador

http://pure.qub.ac.uk/portal/en/publications/structural-reinforcement-of-microvascular-networks-using-electrostatic-layerbylayer-assembly-with-halloysite-nanotubes(ec514d20-9d0f-46a6-92e5-fb1cbbbe65eb).html

http://dx.doi.org/10.1039/C3SM52288A

Idioma(s)

eng

Direitos

info:eu-repo/semantics/restrictedAccess

Fonte

Olugebefola , S C , Hamilton , A , Fairfield , D J , Sottos , N R & White , S R 2014 , ' Structural reinforcement of microvascular networks using electrostatic layer-by-layer assembly with halloysite nanotubes ' Soft Matter , vol 10 , no. 4 , pp. 544-548 . DOI: 10.1039/C3SM52288A

Tipo

article