利用 Bi0.5Na0.5TiO3 铁电纳米粒子改进罗丹明 B 染料的光催化降解:pH 值和极化的优化

Vaishali Gupta, Satyendra Singh
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摘要

我们报告了在紫外可见光下,Bi0.5Na0.5TiO3(BNT)纳米粒子降解罗丹明 B(RhB)染料的光催化参数(pH 值和电晕波长)的优化。BNT 纳米粒子采用溶胶-凝胶法合成,XRD 分析证实其为 Cc 空间群单斜相结构。拉曼光谱证实,电晕抛光没有引起结构畸变。扫描电镜观察到纳米颗粒的平均尺寸为 152 nm,形态不规则。根据样品的吸光度光谱,样品的光带隙为 3.23 eV。光催化降解的优化条件为催化剂用量为 50 mg BNT/50 mL 10 ppm RhB 染料溶液,pH 值为 2。在 pH 值为 2 的条件下,经抛光的 BNT 样品在 60 分钟内对 RhB 染料的降解效率为 96.19%。辐照 90 分钟后达到完全脱色。在此过程中,降解遵循伪一阶动力学,动力学速率常数约为 0.08804 min-1,比 BNT 纳米粒子与染料的速率常数高出约 27 倍。此外,还提出了基于 pH 值和极化效应的染料分子降解的详细机制。基于这些结果,BNT 光催化剂有望成为处理有机染料的候选材料。
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Improved photocatalytic degradation of Rhodamine B dye using Bi0.5Na0.5TiO3 ferroelectric nanoparticles: Optimization of pH and poling

We report the optimization of the photocatalytic parameters (pH and corona-poling) for Rhodamine B (RhB) dye degradation over Bi0.5Na0.5TiO3 (BNT) nanoparticles under UV–vis light. The BNT nanoparticles were synthesized by the sol-gel method and the XRD analysis confirmed the monoclinic phase structure with Cc space group. No structural distortions were induced by corona-poling, which was confirmed by Raman Spectroscopy. The average size of the nanoparticles was 152 ​nm with irregular morphology as observed by SEM. The optical bandgap of the sample was 3.23 ​eV, as derived from the absorbance spectra of the sample. The optimized conditions achieved for photocatalytic degradation were at a catalyst dosage of 50 ​mg BNT/50 ​mL of 10 ​ppm RhB dye solution and pH value 2. The degradation efficiency of the poled BNT sample for RhB dye at pH value 2 was found to be 96.19 % in just 60 ​min. Complete decolorization was attained after 90 ​min of irradiation. In this process, degradation followed the pseudo-first order kinetics, with a kinetic rate constant of approximately 0.08804 min−1, which is around 27 times higher than the rate constant of BNT nanoparticles with dye. A detailed mechanism for the degradation of dye molecules based on pH and poling effect has also been proposed. Based on these results, BNT photocatalyst can be a promising candidate for the treatment of organic dyes.

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