The hydrolysis-condensation reaction of TiO(2) was adapted to the phase inversion temperature (PIT)-nano-emulsion method as a low energy approach to gain control over the size and phase purity of the resulting metal oxide particles. Three different PIT-nano-emulsion syntheses were designed, each one intended to isolate high purity rutile, anatase, and brookite phase particles. Three different emulsion systems were prepared, with a pH of either strongly acidic (H(2)Oâ:âHNO(3), pH â¼0.5), moderately acidic (H(2)Oâ:âisopropanol, pH â¼4.5), or alkaline (H(2)Oâ:âNaOH, pH â¼12). PIT-nano-emulsion syntheses of the amorphous TiO(2) particles were conducted under these conditions, resulting in average particle diameter distributions of â¼140 d nm (strongly acidic), â¼60 d nm (moderately acidic), and â¼460 d nm (alkaline). Different thermal treatments were performed on the amorphous particles obtained from the PIT-nano-emulsion syntheses. Raman spectroscopy and powder X-ray diffraction (PXRD) were employed to corroborate that the thermally treated particles under H(2)Oâ:âHNO(3) (at 850 °C), H(2)Oâ:âNaOH (at 400 °C), and H(2)Oâ:âisopropanol (at 200 °C) yielded highly-pure rutile, anatase, and brookite phases, respectively. Herein, an experimental approach based on the PIT-nano-emulsion method is demonstrated to synthesize phase-controlled TiO(2) particles with high purity employing fewer toxic compounds, reducing the quantity of starting materials, and with a minimum energy input, particularly for the almost elusive brookite phase.
Polymorphic control in titanium dioxide particles.
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作者:Quiñones Vélez Gabriel, Soto Nieves Diego, Castro Vázquez Anushka, López-MejÃas VilmalÃ
| 期刊: | Nanoscale Advances | 影响因子: | 4.600 |
| 时间: | 2023 | 起止号: | 2022 Nov 23; 5(2):425-434 |
| doi: | 10.1039/d2na00390b | ||
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