Reprint

Size-Dependent Effects in Materials for Environmental Protection and Energy Application

Edited by
April 2024
356 pages
  • ISBN978-3-7258-0762-8 (Hardback)
  • ISBN978-3-7258-0761-1 (PDF)

This book is a reprint of the Special Issue Size-Dependent Effects in Materials for Environmental Protection and Energy Application that was published in

Chemistry & Materials Science
Engineering
Physical Sciences
Summary

The concept of size-dependent material properties becomes dominant in the materials science community. Understanding the size-dependent properties of materials is the most challenging issue in advanced material science. To a great extent, this is a result of the technological requirements concerning the development of materials with controlled properties, as well as of the recent progress in materials science, nanotechnology, and computational chemistry. The aim of this Special Issue was to discuss the dimensional effects of materials for environmental protection and clean energy production as an innovative approach for the development of innovative materials with improved properties. The Special Issue comprises, but is not limited to, the following three main classes of advanced inorganic materials that form the basis of modern technologies: (1) materials and thin films for environmental protection; (2) materials for clean energy storage; and (3) ceramics/bioceramics and glasses for better living (with applications in optics, molecular electronics, and medicine).

Format
  • Hardback
License and Copyright
© 2024 by the authors; CC BY-NC-ND license
Keywords
electron-beam modification; TC4 titanium alloy; beam deflection geometry; phase composition; structure; surface architecture; coefficient of friction; corrosion; amorphous Al-Ni-Si alloys; crystallisation; copper additive; graphene oxide; adsorption; methylene blue; environment; PLD; picosecond ablation; metals; metal oxides; sol-gel; IR; UV-Vis spectra; photocatalysis; antibacterial properties; PLD in open air; ns ablation; ps ablation; metal oxide composites; aluminum; ceria; calcium; phosphate(s); conversion coatings; corrosion; sodium-ion batteries; lithium-ion batteries; hybrid metal-ion batteries; Na4Fe3(PO4)2P2O7; carbon composites; rGO; synthesis; structure; characterization; doped tricalcium phosphate; ceramic tablets; femtosecond laser processing; surface modification; antimicrobial characteristics; calcium phosphates; thermodynamic modeling; biomimetic synthesis; amino acids; complexation reaction; Rietveld analysis; biomimetic synthesis; de- and remineralization; micro-CT analysis; NMR; pre-nucleation clusters; zwitterionic functionality; quinones; machine learning; ridge regression; decision tree; ensemble methods; density functional theory; organic electrode materials; glass structure; europium; IR; photoluminescence; density; methane oxidation; Pd/La2O3-CeO2-TiO2-Al2O3; deactivation; sulfur poisoning; catalyst regeneration; TiO2; sorption; hydrogen storage; metal hydrides; carbon materials; fibreboards; modification; copper nanoparticles; antibacterial activity; BaMoO4; high-energy ball milling; solid-state reaction; nanoparticles; infrared absorption bands; optical band gaps; blue and green photoluminescence; color coordinates; thermoelectric oxides; expanded graphite; graphene oxide; layered oxides; zinc oxide; multiphase composites; organosulfur electrode materials; n- and p-type redox reactions; dithiole heterocycle annulation; 1,8-naphthalimide derivatives; zirconium oxide films; zinc alloy coatings; surface morphology; corrosion resistance; structure; chalcogenides; ab initio methods; DFT; artificial photosynthesis; transition metal sulfides; selenides; carbonyl complexes; hard carbon; spent coffee grounds; sodium-ion storage; mineral content; albite