Pengaruh Isopropil Alkohol (IPA) pada Pembentukan Nanotitania Menggunakan Metode Hidrotermal pada Temperatur 250 oC

Maharani Maharani, Posman Manurung, Ediman Ginting

Abstract


Research has been carried out on the effect of adding isopropyl alcohol (IPA) on the formation of nano titania. This study aims to determine the effect of adding IPA on the phase formation and particle size of TiO2. In this study, nano titania was synthesized by hydrothermal method at a temperature of 250oC with a variety of different IPA additions, namely 0.2 ml, 0.4 ml, 0.6 ml, and 0.8 ml. Samples were characterized using X-Ray Diffraction (XRD) and Scanning Electron Microscopy (SEM). The XRD characterization results showed that the diffraction peaks were following the standard database and showed anatase, rutile, and brookite phases. The particle size is calculated from the FWHM value using the Scherrer equation, which is in the 10-13 nm range for the anatase phase and the rutile phase in the 18-20 nm range. The results of SEM characterization in the 04IPA sample showed that the morphology was not perfectly round and the grain size was not uniform.


Keywords


Nano titania, Isopropyl Alcohol (IPA), Hydrothermal

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References


R. K. Goyal and R. K. Goyal, “Introduction to Nanomaterials and Nanotechnology,” Nanomater. Nanocomposites, pp. 1–10, 2018.

B. Y. Xia et al., “One-Dimensional Nanostructures : Synthesis , Characterization , and Applications **,” no. 5, pp. 353–389, 2003.

J. H. Lee and Y. S. Yang, “Effect of HCl concentration and reaction time on the change in the crystalline state of TiO2 prepared from aqueous TiCl4 solution by precipitation,” J. Eur. Ceram. Soc., vol. 25, no. 16, pp. 3573–3578, 2005.

E. Cerro-Prada, S. García-Salgado, M. Á. Quijano, and F. Varela, “Controlled synthesis and microstructural properties of Sol-Gel TiO2 nanoparticles for photocatalytic cement composites,” Nanomaterials, vol. 9, no. 1, 2019.

C. S. Hsieh, H. Zhu, T. Y. Wei, Z. J. Chung, W. D. Yang, and Y. H. Ling, “Applying the experimental statistical method to deal the preparatory conditions of nanometric-sized TiO2 powders from a two-emulsion process,” J. Eur. Ceram. Soc., vol. 28, no. 6, pp. 1177–1183, 2008.

K. M. Parida and B. Naik, “Synthesis of mesoporous TiO2 - xNx spheres by template free homogeneous co-precipitation method and their photo-catalytic activity under visible light illumination,” J. Colloid Interface Sci., vol. 333, no. 1, pp. 269–276, 2009.

N. V. Root, D. Y. Kultin, L. M. Kustov, I. K. Kudryavtsev, and O. K. Lebedeva, “Effect of the conditions of anodizing on the morphology of nanotitania,” Russ. J. Phys. Chem. A, vol. 91, no. 2, pp. 213–216, 2017.

Y. Chen, A. Lin, and F. Gan, “Preparation of nano-TiO2 from TiCl4 by dialysis hydrolysis,” Powder Technol., vol. 167, no. 3, pp. 109–116, 2006.

N. Rozman et al., “Hydrothermal synthesis of rare-earth modified titania: Influence on phase composition, optical properties, and photocatalytic activity,” Materials (Basel)., vol. 12, no. 5, 2019.

J. H. Lee, C. W. Won, T. S. Kim, and H. S. Kim, “Characteristics of BaTiO3 powders synthesized by hydrothermal process,” J. Mater. Sci., vol. 35, no. 17, pp. 4271–4274, 2000.

A. Hosseinnia, M. Keyanpour-Rad, M. Kazemzad, and M. Pazouki, “A novel approach for preparation of highly crystalline anatase TiO2 nanopowder from the agglomerates,” Powder Technol., vol. 190, no. 3, pp. 390–392, 2009.

A. Setyani and E. A. P. Wibowo, “Fabrikasi Nanotubes Titanium Dioksida (TiO2) Menggunakan Metode Hidrotermal,” J. Kim. Val., vol. 3, no. 1, pp. 20–26, 2017.

A. Di Paola, M. Bellardita, L. Palmisano, R. Amadelli, and L. Samiolo, “Preparation and photoactivity of nanocrystalline TiO2 powders obtained by thermohydrolysis of TiOSO4,” Catal. Letters, vol. 143, no. 8, pp. 844–852, 2013.

Manurung, P., Situmeang, R., Sinuhaji, P., and Sembiring, S. 2020. Effect of sulfur doped nanotitania for degradation of remazol yellow and phenol.” Asian J. Chem., vol. 26, no. 18, pp. 6097–6100, 2014.

S. M. Abdel-Azim, A. K. Aboul-Gheit, S. M. Ahmed, D. S. El-Desouki, and M. S. A. Abdel-Mottaleb, “Preparation and application of mesoporous nanotitania photocatalysts using different templates and ph media,” Int. J. Photoenergy, vol. 2014, 2014.

H. M. Rietveld, “A profile refinement method for nuclear and magnetic structures,” J. Appl. Crystallogr., vol. 2, no. 2, pp. 65–71, 1969.

P. Marrone, Chambers, RT, vol. 15, no. 1. 2013.

Elsayed Talat Helmy; Ahmed El Nemr; Mahmoud Mousa; Esam Arafa; Shady Eldafrawy, “Photocatalytic degradation of organic dyes pollutants in the industrial textile wastewater by using synthesized TiO2, C-doped TiO2, S-doped TiO2 and C,S co-doped TiO2 nanoparticles,” J. Water Environ. Nanotechnol., vol. 3, no. 2, pp. 116–127, 2018.

Nasikhudin, M. Diantoro, A. Kusumaatmaja, and K. Triyana, “Study on Photocatalytic Properties of TiO2 Nanoparticle in various pH condition,” J. Phys. Conf. Ser., vol. 1011, no. 1, 2018.




DOI: http://dx.doi.org/10.23960%2Fjtaf.v10i2.2750
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