Engineering Multimaterial Nanostructured Deposits by the Amphiphilicity Degree and Intermolecular Forces

Author:

Shariatnia Shadi1,Zakertabrizi Mohammad1,Hosseini Ehsan1,Song Kenan2,Jarrahbashi Dorrin1,Asadi Amir13ORCID

Affiliation:

1. J Mike Walker '66 Department of Mechanical Engineering Texas A&M University College Station TX 77843 USA

2. The School of Manufacturing Systems and Networks (MSN) Ira A. Fulton Schools of Engineering Arizona State University Mesa AZ 85212 USA

3. Manufacturing and Mechanical Engineering Technology Department of Engineering Technology and Industrial Distribution Texas A&M University College Station TX 77843 USA

Abstract

AbstractAchieving desired performance from self‐assembly of nanoparticles (NPs) is challenging due to the stochastic nature of interactions among the constituent building blocks. Self‐assembly of nano‐colloids through evaporation of particle‐laden droplets can be exploited to fabricate tailored nanostructures that add functionality and engineer the properties of manufactured components. The particle–particle and particle–solvent interactions, and delicate force balance among them are the main factors that define the pattern of the final 3D nanostructure. Here, a nanoparticle‐agnostic approach that allows the fabrication of nanostructures with precisely engineered patterns is introduced. Evaporative droplets of aqueous suspensions of pristine Carbon Nanotubes, Graphene Nanoplatelets, and Boron Nitride Nanotubes representing NPs of different elemental compositions, sizes, and shapes are investigated. Cellulose nanocrystals (CNCs) are used as a platform to make hybrid systems of CNC‐NP and utilize the repulsive‐attractive‐directional interactions in these multimaterial systems to enforce the desired final pattern between ring and disk. It is shown that irrespective of the type of NPs, the amphiphilicity of the hybrid system dictates the formation of deposited patterns. Finally, the effect of self‐assembled patterns on the functionality of multi‐material systems is demonstrated. The proposed method creates new capabilities in the precisely controlled nanostructures and facilitates smart self‐assembly systems.

Funder

National Science Foundation

Publisher

Wiley

Subject

Industrial and Manufacturing Engineering,Mechanics of Materials,General Materials Science

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