Reprint

ZnO Nanowires: Growth, Properties, and Energy Applications

Edited by
January 2024
182 pages
  • ISBN978-3-0365-9919-9 (Hardback)
  • ISBN978-3-0365-9920-5 (PDF)

This book is a reprint of the Special Issue ZnO Nanowires: Growth, Properties, and Energy Applications that was published in

Chemistry & Materials Science
Engineering
Summary

As a biocompatible semiconductor composed of abundant elements, ZnO, in the form of nanowires, exhibits remarkable properties, mainly originating from its wurtzite structure and correlated with its high aspect ratio at nanoscale dimensions. ZnO nanowires have thus received increasing interest in the community and have specifically emerged as a potential building block for a wide variety of devices in the field of energy conversion. Among the different energy conversion applications, ZnO nanowires have, to name just two examples, been integrated into nanostructured solar cells and piezoelectric devices. Despite the vast number of publications in the field, there is still a significant need to explore the growth of ZnO nanowires, to more precisely elucidate and control their fundamental properties, and to improve their integration into real-world engineering devices. This Special Issue brings together more than 80 authors from different countries, who submitted 11 original research articles conveying their foundational research dedicated to ZnO nanowires. Overall, if the present Special Issue cannot fully reflect the high diversity rapidly developing in the community of ZnO nanowires, it will certainly contribute to research interest in the field.

Format
  • Hardback
License
© 2022 by the authors; CC BY-NC-ND license
Keywords
ZnO NRs/TiO2-X MSs heterojunction; photocatalytic hydrogen production; oxygen vacancies; efficiency; spectral response region; ZnO; Ag2S; successive ionic layer adsorption and reaction; photodetector; finite element method; piezoelectric sensor; mechanical energy harvesting; nanogenerator; surface Fermi level pinning; surface traps; chemical synthesis; doping level; cellulose nanofiber; zinc oxide; nanocomposite; electromechanical property; UV sensing; piezoelectric sensor; mechanical energy harvesting; nanogenerator chemical synthesis; gravure printing; flexible electronics; ZnO nanowires; energy harvester; seed layer; flexible piezoelectric nanogenerator; hydrothermal synthesis; carbon nanotubes; zinc oxide nanowires; graphene; heterostructure interfaces; chemical vapor deposition; direct-write patterning; ZnO nanowires; Sb2S3; chemical spray pyrolysis; core shell heterostructures; extremely thin absorbers; solar cells; ZnO; nanowires; AZO; hydrothermal growth; perovskite solar cell; zinc oxide nanostars; pseudocapacitor; oxygen vacancies; substrate contribution evaluation; neutral pH; ZnO-nanostructures; gradual ZnO growth manipulation; spatial-selective ZnO growth; laser-induced catalyst generation; thermal chemical vapor deposition