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Rational design of visible-light-driven Pd-loaded α/β-Bi_2O_3 nanorods with exceptional cationic and anionic dye degradation properties

机译:具有出色的阳离子和阴离子染料降解性能的可见光驱动的Pd负载Pd的α/β-Bi_2O_3纳米棒的合理设计

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Here, we report a simple sono-chemical method to fabricate Pd-loaded alpha/beta-Bi2O3 nanorods with exceptional methylene blue (MB), brilliant green (BG) and acid red 1 (AR) dye degradation properties. The unique nanorods morphology was accomplished by treating of bismuth complexes with sodium hydroxide at room temperature. Palladium was introduced by UV-photo-deposition method from palladium (II) chloride source. The successful substitution of Bi3+ by Pd2+ in bulk of Pd-loaded alpha/beta-Bi2O3 was confirmed by X-ray diffraction (XRD) and Fourier-transform infrared spectroscopy (FTIR). The surface presence of alpha-, beta-Bi2O3, PdO and metallic Pd-0 was confirmed by X-ray photoelectron spectroscopy (XPS). The rational design and fabrication approach is based on matching of (1) valence band (VB) and conduction band (CB) of as-prepared catalyst with redox potentials of dyes, (2) VB and CB with reactive oxygen species (ROS), and (3) redox potentials of dyes with ROS. By using the approach of rational design the material is able to degrade cationic MB (90.8%), BG (83.3%) and anionic AR (83.2%) dyes within 20 min under LED light irradiation (100 mW/cm(2)), as well as to degrade mixtures of cationic/anionic MB-AR and BG-AR dyes. Further optimization of dye degradation parameters, such as initial concentration of dye, amount of catalyst, and solution pH was carried out. A mechanism of dye degradation was proposed based on ROS scavenging experiments and mapping out of semiconductor band structures with redox potentials of dyes and ROS. Pd-loaded alpha/beta-Bi2O3 catalyst has potential applications in wastewater treatment, water splitting and healthcare industries.
机译:在这里,我们报告了一种简单的声化学方法,以制造具有出色的亚甲基蓝(MB),亮绿色(BG)和酸性红1(AR)染料降解性能的Pd加载的alpha / beta-Bi2O3纳米棒。通过在室温下用氢氧化钠处理铋配合物来实现独特的纳米棒形态。通过紫外光沉积法从氯化钯(II)源引入钯。 X射线衍射(XRD)和傅里叶变换红外光谱(FTIR)证实了大量的Pd负载的α/β-Bi2O3能够成功地将Bi3 +替换为Pd2 +。 X射线光电子能谱(XPS)证实了α-,β-Bi2O3,PdO和金属Pd-0的表面存在。合理的设计和制造方法基于(1)制备的催化剂的价带(VB)和导带(CB)与染料的氧化还原电位相匹配;(2)VB和CB与活性氧(ROS)相匹配, (3)具有ROS的染料的氧化还原电位。通过采用合理设计的方法,该材料能够在LED光照射下(100 mW / cm(2))在20分钟内降解阳离子MB(90.8%),BG(83.3%)和阴离子AR(83.2%)染料,以及降解阳离子/阴离子MB-AR和BG-AR染料的混合物。进行了染料降解参数的进一步优化,例如染料的初始浓度,催化剂的量和溶液的pH值。提出了一种基于ROS清除实验并绘制出具有染料和ROS氧化还原电位的半导体能带结构的染料降解机理。负载钯的α/β-Bi2O3催化剂在废水处理,水分解和医疗保健行业中具有潜在的应用。

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