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Capillary micromechanics for core-shell particles

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

In this work, we have developed a facile, economical microfluidic approach as well as a simple model description to measure and predict the mechanical properties of composite core-shell microparticles made from materials with dramatically different elastic properties. By forcing the particles through a tapered capillary and analyzing their deformation, the shear and compressive moduli can be measured in one single experiment. We have also formulated theoretical models that accurately capture the moduli of the microparticles in both the elastic and the non-linear deformation regimes. Our results show how the moduli of these core-shell structures depend on the material composition of the core-shell microparticles, as well as on their microstructures. The proposed technique and the understanding enabled by it also provide valuable insights into the mechanical behavior of analogous biomaterials, such as liposomes and cells. © 2014 the Partner Organisations.
Original languageEnglish
Pages (from-to)3271-3276
JournalSoft Matter
Volume10
Issue number18
DOIs
Publication statusPublished - 14 May 2014
Externally publishedYes

Bibliographical note

Publication details (e.g. title, author(s), publication statuses and dates) are captured on an “AS IS” and “AS AVAILABLE” basis at the time of record harvesting from the data source. Suggestions for further amendments or supplementary information can be sent to [email protected].

Funding

This research was supported by the NWO/RGC Joint Research Scheme sponsored by the Research Grants Council of Hong Kong and the Netherlands Organisation for Scientific Research (D-HK009/11T), the Basic Research Program-General Program (JC201105190878A) from the Science and Technology Innovation Commission of Shenzhen Municipality, the Young Scholar's Program (NSFC51206138/E0605) from the National Natural Science Foundation of China as well as the Seed Funding Program for Basic Research (201101159009), Small Project Funding (201109176165) from the University of Hong Kong, and the Research Grants Council of Hong Kong (HKU 719813E, HKU 707712P, GRF718111 and GRF717613). This research was also supported in part by the Zhejiang Provincial, Hangzhou Municipal and Lin'an County Governments.

RGC Funding Information

  • RGC-funded

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