Multifunctional Applications Enabled by Fluorination of Hexagonal Boron Nitride

Author:

Salpekar Devashish1,Serles Peter2ORCID,Colas Guillaume3,Ma Li2,Yadav Shwetank4,Hamidinejad Mahdi56,Khabashesku Valery N1,Gao Guanhui1,Swaminathan Venkataraman1,Vajtai Robert1,Singh Chandra Veer4,Park Chul2,Filleter Tobin2,Meiyazhagan AshokKumar1,Ajayan Pulickel M.1ORCID

Affiliation:

1. Department of Materials Science & NanoEngineering Rice University 6100 Main Street Houston TX 77005 USA

2. Department of Mechanical & Industrial Engineering The University of Toronto 5 King's College Road Toronto ON M5S 3G8 Canada

3. Université de Franche‐Comté CNRS institut FEMTO‐ST Besançon F‐25000 France

4. Department of Materials Science and Engineering University of Toronto 184 College St Toronto ON M5S 3E4 Canada

5. Department of Engineering University of Cambridge Cambridge CB30FS UK

6. Department of Mechanical Engineering University of Alberta 9211‐116 Street NW Edmonton AB T6G1H9 Canada

Abstract

Abstract2D materials exhibit exceptional properties as compared to their macroscopic counterparts, with promising applications in nearly every area of science and technology. To unlock further functionality, the chemical functionalization of 2D structures is a powerful technique that enables tunability and new properties within these materials. Here, the successful effort to chemically functionalize hexagonal boron nitride (hBN), a chemically inert 2D ceramic with weak interlayer forces, using a gas‐phase fluorination process is exploited. The fluorine functionalization guides interlayer expansion and increased polar surface charges on the hBN sheets resulting in a number of vastly improved applications. Specifically, the F‐hBN exhibits enhanced dispersibility and thermal conductivity at higher temperatures by more than 75% offering exceptional performance as a thermofluid additive. Dispersion of low volumes of F‐hBN in lubricating oils also offers marked improvements in lubrication and wear resistance for steel tribological contacts decreasing friction by 31% and wear by 71%. Additionally, incorporating numerous negatively charged fluorine atoms on hBN induces a permanent dipole moment, demonstrating its applicability in microelectronic device applications. The findings suggest that anchoring chemical functionalities to hBN moieties improves a variety of properties for h‐BN, making it suitable for numerous other applications such as fillers or reinforcement agents and developing high‐performance composite structures.

Funder

Rice University

Natural Sciences and Engineering Research Council of Canada

Publisher

Wiley

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