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Enhanced photocatalytic activity and chemical sensor development based on ternary B2O3·Zn6Al2O9·ZnO nanomaterials for environmental safety

机译:基于三元B2O3·Zn6Al2O9·ZnO纳米材料进行环境安全增强的光催化活性和化学传感器开发

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摘要

The synthesis of ternary B2O3·Zn6Al2O9·ZnO nanomaterials by a simple co-precipitation method and their potential application as an efficient photocatalyst and chemical sensor has been reported. The synthesized nanomaterial was studied by XRD, SEM, EDS mapping, photoluminescence (PL), FTIR, and UV-visible spectroscopy. This nanocomposite exhibits enhanced efficiency in photo-catalysis in Methyl Violet 6b (MV) dye degradation. It displays an efficiency of 97.24% under visible light and 78.98% under UV light at pH 9. Moreover, it loses only 2.61% efficiency over three cycles of reuse. What’s more, in the presence of H2O2, it can degrade over 98% of the dye within just 1 hour. The PL and PLE properties were also reported with a change in excitation energy and calcination temperature. The PLE shows three equidistant peaks with 20 nm intervals. For potential chemical sensor development, the B2O3·Zn6Al2O9·ZnO nanomaterial was deposited on a glassy carbon electrode (GCE) to produce a sensor with a fast and selective response towards 4-aminophenol (4-AP) in phosphate buffer. The sensor also exhibits good sensitivity and long-term stability, and enhanced electrochemical responses. The calibration plot is linear over the 0.1 nM to 0.01 M 4-AP concentration range. The sensitivity and detection limit are calculated from the slope of the calibration plot to be 0.506329 μA cm−2 nM−1 and 0.019 nM (signal-to-noise ratio, at a SNR of 3), respectively. The synthesized ternary B2O3·Zn6Al2O9·ZnO nanomaterials have great potential to be used in the future development of promising efficient photocatalysts and sensitive chemical sensors for the detection and/or degradation of hazardous and carcinogenic toxic commercial dyes and phenolic compounds for improved safety in the environmental and health care fields.
机译:据报道,通过简单的共沉淀法合成三元B2O3·Zn6Al209·ZnO纳米材料及其作为高效光催化剂和化学传感器的潜在应用。通过XRD,SEM,EDS映射,光致发光(PL),FTIR和UV可见光谱研究了合成的纳米材料。该纳米复合材料在甲基紫6B(MV)染料降解中具有增强的效率。它在可见光下显示出97.24%的效率,在pH 9处在紫外线下显示78.98%。此外,它仅在三个重复循环中失去了2.61%的效率。更重要的是,在H2O2的存在下,它可以在1小时内降解98%的染料。还报告了PL和PLE属性随着激发能量和煅烧温度的变化。 PLE显示三个等距峰,间隔为20纳米。对于潜在的化学传感器显影,B2O3·Zn6Al2O9·ZnO纳米材料沉积在玻璃状碳电极(GCE)上,以产生具有快速和选择性响应于4-氨基苯酚(4-AP)的磷酸盐缓冲液的传感器。传感器还具有良好的敏感性和长期稳定性,以及增强的电化学反应。校准图是线性的0.1nm至0.01m 4-AP浓度范围。从校准图的斜率计算的灵敏度和检测限为0.506329μAcm-2nm-1和0.019nm(在3)的信噪比下)。合成的三元b2O3·Zn6Al2O9·ZnO纳米材料具有很大的潜力,用于未来发展有希望的高效光催化剂和敏感化学传感器,用于检测和/或降解危险和致癌有毒商业染料和酚类化合物,以改善环境的安全性和医疗保健领域。

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