An Effective Strategy for Template-Free Electrodeposition of Aluminum Nanowires with Highly Controllable Irregular Morphologies.

Nanomaterials (Basel)

State Key Laboratory of Advanced Special Steel, School of Materials Science and Engineering, Shanghai University, Shanghai 200444, China.

Published: April 2022

AI Article Synopsis

  • Aluminum nanowires with unique shapes were created using a process called template-free electrodeposition from an ionic liquid at room temperature.
  • The study examined how diffusion conditions and deposition potential impact the shapes of these nanowires, finding that less diffusion leads to specific segmented forms and changes in diameter during growth.
  • Increasing the overpotential has a similar effect on the nanowires' morphology as reducing diffusion flux, with many of the resulting wires exhibiting a single crystalline structure oriented in the [100] direction.

Article Abstract

Aluminum nanowires with irregular morphologies were prepared by template-free electrodeposition from a room-temperature chloroaluminate ionic liquid. The effects of the diffusion condition and deposition potential on the morphologies of Al nanowires were investigated. The decrease of diffusion flux leads to the formation of particular segmented morphologies of Al nanowires. A dynamic equilibrium between the electrochemical reaction and the diffusion of AlCl results in the current fluctuation and the periodical variation of diameters in the Al nanowires growth period. Al nanowires with several kinds of morphologies can be controllably electrodeposited under a restricted diffusion condition, without using a template. Increasing the overpotential shows the similar influence on the morphology of Al nanowires as the decrease in diffusion flux under the restricted diffusion condition. Most of the segmented Al nanowires have a single crystalline structure and grow in the [100] orientation. This work also provides a new strategy for the fabrication of nanowires with highly controllable irregular morphologies.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9105039PMC
http://dx.doi.org/10.3390/nano12091390DOI Listing

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