Polymer‐Grafted, Gold Nanoparticle‐Based Nano‐Capsules as Reversible Colorimetric Tensile Strain Sensors

Author:

Kim Jae‐Hyun1ORCID,Rosenfeld Joseph1,Kim Ye Chan2,Choe Sean3,Composto Russell J.12,Lee Daeyeon1,Dreyfus Rémi34ORCID

Affiliation:

1. Department of Chemical and Biomolecular Engineering University of Pennsylvania Philadelphia Pennsylvania 19104 USA

2. Department of Materials Science and Engineering University of Pennsylvania Philadelphia Pennsylvania 19104 USA

3. Complex Assemblies of Soft Matter Laboratory (COMPASS) UMI 3254 CNRS‐Solvay‐University of Pennsylvania, CRTB Bristol PA 19007 USA

4. Laboratoire Nanotechnologies Nanosystemes (LN2) CNRS – Université de Sherbrooke Quebec J1K 0A5 Canada

Abstract

AbstractColloidal colorimetric microsensors enable the in‐situ detection of mechanical strains within materials. Enhancing the sensitivity of these sensors to small scale deformation while enabling reversibility of the sensing capability would expand their utility in applications including biosensing and chemical sensing. In this study, we introduce the synthesis of colloidal colorimetric nano‐sensors using a simple and readily scalable fabrication method. Colloidal nano sensors are prepared by emulsion‐templated assembly of polymer‐grafted gold nanoparticles (AuNP). To direct the adsorption of AuNP to the oil‐water interface of emulsion droplets, AuNP (≈11nm) are functionalized with thiol‐terminated polystyrene (PS, Mn = 11k). These PS‐grafted gold nanoparticles are suspended in toluene and subsequently emulsified to form droplets with a diameter of ≈30µm. By evaporating the solvent of the oil‐inwater emulsion, we form nanocapsules (AuNC) (diameter < 1µm) decorated by PS‐grafted AuNP. To test mechanical sensing, the AuNC are embedded in an elastomer matrix. The addition of a plasticizer reduces the glass transition temperature of the PS brushes, and in turn imparts reversible deformability to the AuNC. The plasmonic peak of the AuNC shifts towards lower wavelengths upon application of uniaxial tensile tension, indicating increased inter‐nanoparticle distance, and reverts back as the tension is released.

Funder

Natural Sciences and Engineering Research Council of Canada

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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