Aligned TiO2 Scaffolds in the Presence of a Galactopyranose Matrix by Sol-Gel Process

Author:

Romero Humberto Alejandro Monreal1,Piñon Teresa Pérez1,Sagarnaga Diana1,Rico Raquel Duarte1,Rascón Alfredo Nevárez1,Pérez Carlos Alberto Martínez2ORCID,Piñon Dagoberto Pérez3,Flores de los Ríos Juan Pablo4,Carrillo Mario Sánchez4,Chacón-Nava José Guadalupe5

Affiliation:

1. Department of Biomaterials Science and Nanotechnology, University of Chihuahua (UACH), Avenue University, Chihuahua 31000, Mexico

2. Institute of Engineering and Technology U.A.C.J., Avenue of Charro # 610 Cd. Juárez, Chihuahua 32310, Mexico

3. Department of Polymers and Biomaterials, University of Chihuahua (UACH), University Circuit Campus II, Chihuahua 31110, Mexico

4. Department Metal-Mechanical, National Technological of Mexico-Technological Institute of Chihuahua, Technological Avenue 2909, Chihuahua 31130, Mexico

5. Advanced Materials Research Center, S.C. (CIMAV) and National Nanotechnology Laboratory, Avenue M. Cervantes 120, Industrial Complex Chihuahua, Chihuahua 31136, Mexico

Abstract

In this work, titanium dioxide scaffolds were synthesized. Titanium isopropoxide (IV) was used as a precursor in its formation, using a polymeric network of galactopyranose as a template. The powder sample obtained was evaluated by scanning tunneling microscopy (STM), transmission electron microscopy (TEM), X-ray diffraction (XRD), Brunauer-Emmett-Teller (BET) analysis, and thermal gravimetric analysis (TGA-DTA). According to the results, it was found that these scaffolds can be successfully synthesized in solution using the sol-gel method. The synthesized scaffolds have diameters from 50 nm with porosity of approximately 0.3–10 nm. Important parameters, such as pH and the concentration of the metallic precursors, were optimized in this solution. The values of maximum average roughness R(max) and roughness value (Ra) were 0.50 and 1.45, respectively. XRD diffraction analysis shows the formation of crystalline phases in the TiO2 scaffold at 700 °C. The use of biological polymers represents an alternative for the synthesis of new materials at low cost, manipulating the conditions in the production processes and making the proposed system more efficient.

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

Reference61 articles.

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