Reprint

Boron Nitride Nanostructures

Edited by
December 2018
104 pages
  • ISBN978-3-03897-489-5 (Paperback)
  • ISBN978-3-03897-490-1 (PDF)

This book is a reprint of the Special Issue Boron Nitride Nanostructures that was published in

Chemistry & Materials Science
Engineering
Summary
The research topic of this Special Issue will consider (i) the design of nanostructured boron nitride nanostructures with controlled crystal structures, porosity, and dimensionality, (ii) the functionalization of boron nitride, and (iii) prospective applications of boron nitride nanostructures and materials. It contains six papers dealing with (i) the exfoliation of hexagonal Boron Nitride (h-BN) in liquid phase by ion intercalation, (ii) effective mechanical properties and thickness determinations of Boron Nitride nanosheets using molecular dynamics simulation, (iii) direct observation of inner-layer inward contractions of multiwalled Boron Nitride nanotubes upon in situ heating, (iv) the alignment of Boron Nitride nanofibers in epoxy composite films for thermal conductivity and dielectric breakdown strength improvement, (v) the effect of Boron Nitride on the thermal and mechanical properties of poly(3-hydroxybutyrate-co-3-hydroxyvalerate), and (vi) hexagonal Boron Nitride functionalized with Au nanoparticles—properties and potential biological applications.
Format
  • Paperback
License
© 2019 by the authors; CC BY-NC-ND license
Keywords
multi-walled BNNTs; anisotropic thermal expansion; transmission electron microscopy; in situ heating; thermal contraction; electrospinning technique; BN nanofibers; alignment; epoxy composite; thermal and dielectric properties; boron nitride nanosheet; molecular dynamics; thickness; mechanical strength; vacancy defects; boron nitride; nanocomposite; functionalization; gold nanoparticles; cytobiocompatibility; liquid exfoliation; boron nitride nanosheets; ion intercalation; gelatin; biopolymer; bionanocomposite; poly(3-hydroxybutyrate-co-3-hydroxyvalerate); boron nitride; mechanical properties; thermal properties