Architecture Controls Phonon Propagation in All‐Solid Brush Colloid Metamaterials

Author:

Cang Yu1,Sainidou Rebecca2ORCID,Rembert Pascal2,Matyjaszewski Krzysztof3ORCID,Bockstaller Michael4ORCID,Graczykowski Bartlomiej5ORCID,Fytas George67ORCID

Affiliation:

1. School of Aerospace Engineering and Applied Mechanics Tongji University Zhangwu Road 100 Shanghai 200092 China

2. Laboratoire Ondes et Milieux Complexes UMR CNRS 6294 UNIHAVRE Normandie University 75 rue Bellot Le Havre F‐76600 France

3. Chemistry Department Carnegie Mellon University 4400 Forbes Avenue Pittsburgh PA 15213 USA

4. Department of Materials Science and Engineering Carnegie Mellon University 5000 Forbes Avenue Pittsburgh PA 15213 USA

5. Faculty of Physics Adam Mickiewicz University Uniwersytetu Poznanskiego 2 Poznan 61‐614 Poland

6. Max Planck Institute for Polymer Research Ackermannweg 10 55128 Mainz Germany

7. Institute of Electronic Structure and Laser FORTH N. Plastira 100 Heraklion 70013 Greece

Abstract

AbstractBrillouin light scattering and elastodynamic theory are concurrently used to determine and interpret the hypersonic phonon dispersion relations in brush particle solids as a function of the grafting density with perspectives in optomechanics, heat management, and materials metrology. In the limit of sparse grafting density, the phonon dispersion relations bear similarity to polymer‐embedded colloidal assembly structures in which phonon dispersion can be rationalized on the basis of perfect boundary conditions, i.e., isotropic stiffness transitions across the particle interface. In contrast, for dense brush assemblies, more complex dispersion characteristics are observed that imply anisotropic stiffness transition across the particle/polymer interface. This provides direct experimental validation of phonon propagation changes associated with chain conformational transitions in dense particle brush materials. A scaling relation between interface tangential stiffness and crowding of polymer tethers is derived that provides a guideline for chemists to design brush particle materials with tailored phononic dispersion characteristics. The results emphasize the role of interfaces in composite materials systems. Given the fundamental relevance of phonon dispersion to material properties such as thermal transport or mechanical properties, it is also envisioned that the results will spur the development of novel functional hybrid materials.

Funder

National Natural Science Foundation of China

National Science Foundation

Narodowym Centrum Nauki

European Research Council

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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