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Updated: May 1, 2026

Facile Preparation of Ultrafine Aluminum Hydroxide Particles with or without Mesoporous MCM-41 in Ambient Environments
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Hydroxide-Derived Nanostructures: Scalable Synthesis, Characterization, Properties, and Potential Applications.

Hussein O Badr1, Michel W Barsoum1

  • 1Department of Material Science and Engineering, Drexel University, Philadelphia, PA, 19104, USA.

Advanced Materials (Deerfield Beach, Fla.)
|May 9, 2024
PubMed
Summary

A new scalable method using hydroxide solutions creates novel metal oxide nanostructures (HDNs). These materials, including TiO2 nanofilaments and MnO2 flakes, show promise in energy, environmental, and biomedical applications.

Keywords:
1D nanofilamentsMnO2 birnessitebottom‐up synthesisferrite nanoparticleslarge scale synthesislepidocrocite titanateself‐assemblysolution‐precipitationtitanium oxide

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Area of Science:

  • Materials Science
  • Nanotechnology
  • Chemistry

Background:

  • Metal oxide nanostructures are crucial for diverse applications due to their unique properties.
  • Scalable synthesis of novel nanostructures remains a key challenge in materials science.

Purpose of the Study:

  • To introduce a novel, scalable synthesis method for metal oxide nanostructures called Hydroxides-Derived Nanostructures (HDNs).
  • To explore the potential applications of these newly synthesized nanostructures in various fields.

Main Methods:

  • Reaction of hydroxide aqueous solutions (e.g., TMAH) with metal-containing precursors at low temperatures (<100°C) and atmospheric pressure.
  • Synthesis of 1D TiO2-based lepidocrocite nanofilaments (1DL NFs) from Ti-containing powders.
  • Preparation of magnetic Fe3O4 nanoparticles and 2D MnO2 birnessite flakes.

Main Results:

  • Successful scalable synthesis of novel HDNs, including 1DL TiO2 nanofilaments.
  • Demonstrated outstanding performance of 1DLs in photo- and electrocatalysis, water splitting, batteries, and biomedical applications.
  • Identified potential of MnO2 flakes in electrochemical energy storage.

Conclusions:

  • The HDN method offers a versatile platform for synthesizing diverse metal oxide nanostructures.
  • This approach opens new avenues for molecular self-assembly in nanomaterial synthesis.
  • HDNs have significant implications for advancing energy, environmental, and biomedical technologies.