Reprint

Tuning the Physicochemical Properties of Nanostructured Materials through Advanced Preparation Methods

Edited by
June 2022
268 pages
  • ISBN978-3-0365-3659-0 (Hardback)
  • ISBN978-3-0365-3660-6 (PDF)

This book is a reprint of the Special Issue Tuning the Physicochemical Properties of Nanostructured Materials through Advanced Preparation Methods that was published in

Chemistry & Materials Science
Engineering
Summary

Over the last few decades, nanotechnology has gained huge interest due to its extensive application in various fields including catalysis, electronics, optics, energy, and environment. The design and controlled synthesis of advanced nanomaterials with unique properties make them highly attractive in these fields.

Nanomaterials can be classified into one-, two-, and three-dimensional materials. The main characteristic of nanostructured materials is their surface reactivity due to their active surface functional groups. The control of the size, shape, and nature of nanoparticles is strongly influenced by the synthetic route applied during the preparation step (i.e. hydrothermal, solvothermal, combustion, sol-gel).

The Special Issue of Nanomaterials, entitled, “Tuning the physicochemical properties of nanostructured materials through advanced preparation methods,” contains the contribution of research groups from different fields and discuss the recent developments in nanomaterials with regard to the preparation method used.

Format
  • Hardback
License and Copyright
© 2022 by the authors; CC BY-NC-ND license
Keywords
DIL; DTA; DTG; FT-IR; SCS; yttria nanopowder; metal cluster; one-dimensional connected structure; two-dimensional connected structure; three-dimensional connected structure; metal–organic framework; photoluminescence; electrical conductivity; MDF; MWCNTs; UF; thermal conductivity; formaldehyde emission; I.B; MOE; MOR; Ts; WA; Ni-Al layered double hydroxides; gold catalyst; CeO2 addition; water–gas shift reaction; azo-polyimide; surface relief grating; AFM PinPoint; topographical analysis; nanomechanical characterization; molecular simulation; ethanol steam reforming; potassium; rubidium; basicity; zirconia; XANES; DRIFTS; fiber laser; mode locking; PbS quantum dots; Ni/BCY15 proton-conducting anode; hydrazine reduction; Ni–Ce interaction; SOFC; electrochemical impedance spectroscopy; XPS; EPR; biochar; emerging contaminants; nanoceria; Fenton-like reaction; SR-AOPs; water treatment; physical/chemical characteristics; functionality; nanoparticles; nanomaterials; n/a