Directed assembly of nanoparticles into continuous microstructures by standing surface acoustic waves.

Acoustic manipulation Conductive microstructures Directed assembly Micro patterning Nanoparticle sintering Stabilized nanoparticles

Journal

Journal of colloid and interface science
ISSN: 1095-7103
Titre abrégé: J Colloid Interface Sci
Pays: United States
ID NLM: 0043125

Informations de publication

Date de publication:
15 Feb 2019
Historique:
received: 06 09 2018
revised: 27 10 2018
accepted: 29 10 2018
pubmed: 9 11 2018
medline: 9 11 2018
entrez: 9 11 2018
Statut: ppublish

Résumé

Directed-assembly by standing surface acoustic waves (SSAWs) only requires an acoustic contrast between particles and their surrounding medium. It is therefore highly attractive as this requirement is fulfilled by almost all dispersed systems. Previous studies utilizing SSAWs demonstrated mainly reversible microstructure arrangements from nanoparticles. The surface chemistry of colloids dramatically influences their tendency to aggregate and sinter; therefore, it should be possible to form permanent microstructures with intimate contact between nanoparticles by controlling this property. Dispersed silver nanoparticles in a microfluidic channel were exposed to SSAWs and reversibly accumulated at the pressure nodes. We show that addition of chloride ions that remove the polyacrylic capping of the nanoparticles trigger their sintering and the formation of stable conducting silver microstructures. Moreover, if the destabilizing ions are added prior to nanoparticle assembly while continuously streaming the dispersion through the acoustic aperture, the induced aggregation leads to formation of significantly thinner microstructures, which are (for the first time) unlimited in length by the acoustic apparatus. This new approach overcomes the discrepancy between the need for organic dispersants to prevent unwanted aggregation in the dispersion, and the end product's requirement for intimate contact between the colloidal particles.

Identifiants

pubmed: 30408690
pii: S0021-9797(18)31297-9
doi: 10.1016/j.jcis.2018.10.100
pii:
doi:

Types de publication

Journal Article

Langues

eng

Pagination

701-709

Informations de copyright

Copyright © 2018 Elsevier Inc. All rights reserved.

Auteurs

Haim Sazan (H)

Department of Chemistry & Institute for Nanotechnology and Advanced Materials, Bar-Ilan University, Ramat-Gan 5290002, Israel.

Silvia Piperno (S)

Department of Chemistry & Institute for Nanotechnology and Advanced Materials, Bar-Ilan University, Ramat-Gan 5290002, Israel.

Michael Layani (M)

School of Materials Science and Engineering, Nanyang Technological University, 639798 Singapore; Singapore-HUJ Alliance for Research and Enterprise (SHARE), Nanomaterials for Energy and Energy-Water Nexus (NEW), Campus for Research Excellence and Technological Enterprise (CREATE), 138602, Singapore.

Shlomo Magdassi (S)

Singapore-HUJ Alliance for Research and Enterprise (SHARE), Nanomaterials for Energy and Energy-Water Nexus (NEW), Campus for Research Excellence and Technological Enterprise (CREATE), 138602, Singapore; Casali Center for Applied Chemistry, Institute of Chemistry, The Hebrew University of Jerusalem, Jerusalem 9190401, Israel.

Hagay Shpaisman (H)

Department of Chemistry & Institute for Nanotechnology and Advanced Materials, Bar-Ilan University, Ramat-Gan 5290002, Israel. Electronic address: hagay.shpaisman@biu.ac.il.

Classifications MeSH