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Preparation of Functional Silica Using a Bioinspired Method
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Published on: August 1, 2018

Hybrid and biohybrid silicate based materials: molecular vs. block-assembling bottom-up processes.

Eduardo Ruiz-Hitzky1, Pilar Aranda, Margarita Darder

  • 1Instituto de Ciencia de Materiales de Madrid, CSIC, Cantoblanco, 28049-Madrid, Spain. eduardo@icmm.csic.es

Chemical Society Reviews
|December 15, 2010
PubMed
Summary

This review compares nanofabrication methods for nanostructured hybrids and biohybrids. It highlights how preparation techniques influence material properties by examining structural and textural characteristics.

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Area of Science:

  • Materials Science
  • Nanotechnology
  • Chemistry

Background:

  • Nanostructured hybrids and biohybrids are crucial materials with diverse applications.
  • Their properties are highly dependent on their structural and textural characteristics.
  • Understanding the influence of preparative procedures is key to tailoring material performance.

Purpose of the Study:

  • To critically review the influence of nanofabrication methods on nanostructured hybrids and biohybrids.
  • To compare structural and textural characteristics resulting from different preparation strategies.
  • To evaluate the advantages and disadvantages of molecular and block-assembly bottom-up approaches.

Main Methods:

  • Literature review of nanofabrication techniques.
  • Comparative analysis of structural and textural properties.
  • Discussion of silicate-based hybrid examples prepared via bottom-up strategies.

Main Results:

  • Preparative procedures significantly impact the structural and textural properties of nanostructured materials.
  • Both molecular and block-assembly bottom-up strategies offer distinct advantages and disadvantages.
  • Specific examples illustrate the structure-property relationships in silicate-based hybrids.

Conclusions:

  • The choice of nanofabrication method is critical for controlling the properties of nanostructured hybrids and biohybrids.
  • Bottom-up strategies provide versatile routes for material design.
  • Further research can optimize these methods for targeted material applications.