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n-ZnO/p-Cu2O/n-TNA 三元异质结电极光电催化降解四环素的性能。

Photoeletrocatalytic activity of an n-ZnO/p-Cu2O/n-TNA ternary heterojunction electrode for tetracycline degradation.

机构信息

School of Environmental Science and Engineering, Shanghai Jiao Tong University, No. 800 Dongchuan Rd, Shanghai 200240, China.

出版信息

J Hazard Mater. 2013 Nov 15;262:482-8. doi: 10.1016/j.jhazmat.2013.09.002. Epub 2013 Sep 12.

Abstract

In this study, a novel ternary heterojunction n-ZnO/p-Cu2O/n-TiO2 nanotube arrays (n-ZnO/p-Cu2O/n-TNA) nanophotocatalyst with a sandwich-like nanostructure was constructed and applied for the photoelectrocatalytic (PEC) degradation of typical PPCPs, tetracycline (TC). The ternary heterojunction n-ZnO/p-Cu2O/n-TNA was obtained by depositing Cu2O on the surface of TNA via sonoelectrochemical deposition (SED) and subsequently building a layer of ZnO onto the p-Cu2O/n-TNA surface through hydrothermal synthesis. After being deposited by the Cu2O, the absorption-band edge of the p-Cu2O/n-TNA was obviously red-shifted to the visible region (to 505 nm), and the band gap was reduced from its original 3.20 eV to 2.46 eV. The band gap absorption edge of the ternary n-ZnO/p-Cu2O/n-TNA is similar to that of p-Cu2O/n-TN and extends the visible spectrum absorption to 510 nm, corresponding to an Eg value of about 2.43 eV. Under illumination of visible light, the photocurrent density of the ternary heterojunction n-ZnO/p-Cu2O/n-TNA electrode at 0.5 V (vs. Ag/AgCl) was more than 106 times as high as that of the pure TNAs electrode, 3.6 times as high as that of the binary heterojunction p-Cu2O/n-TNA electrode. The degradation of TC indicated that the ternary heterojunction n-ZnO/p-Cu2O/n-TNA electrode maintained a very high photoelectrocatalytic activity and excellent stability and reliability. Such kind of ternary heterojunction electrode material has a broad application prospect not only in pollution control but also in many other fields.

摘要

在这项研究中,构建了一种具有三明治状纳米结构的新型三元异质结 n-ZnO/p-Cu2O/n-TiO2 纳米管阵列(n-ZnO/p-Cu2O/n-TNA)纳米光催化剂,并将其应用于典型 PPCPs(四环素,TC)的光电催化(PEC)降解。三元异质结 n-ZnO/p-Cu2O/n-TNA 是通过超声电化学沉积(SED)将 Cu2O 沉积在 TNA 表面上,并通过水热合成在 p-Cu2O/n-TNA 表面上构建一层 ZnO 而获得的。沉积 Cu2O 后,p-Cu2O/n-TNA 的吸收带边明显红移到可见光区(至 505nm),带隙从原始的 3.20eV 降低到 2.46eV。三元 n-ZnO/p-Cu2O/n-TNA 的带隙吸收边与 p-Cu2O/n-TN 的带隙吸收边相似,并将可见光光谱吸收扩展到 510nm,对应于约 2.43eV 的 Eg 值。在可见光照射下,三元异质结 n-ZnO/p-Cu2O/n-TNA 电极在 0.5V(相对于 Ag/AgCl)时的光电流密度比纯 TNAs 电极高 106 倍以上,比二元异质结 p-Cu2O/n-TNA 电极高 3.6 倍。TC 的降解表明,三元异质结 n-ZnO/p-Cu2O/n-TNA 电极具有非常高的光电催化活性和优异的稳定性和可靠性。这种三元异质结电极材料不仅在污染控制方面,而且在许多其他领域都具有广阔的应用前景。

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