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Fabrication of Hierarchical ZnO@NiO Core–Shell Heterostructures for Improved Photocatalytic Performance

机译:分层ZnO @ NiO核心壳异质结构的制备,提高光催化性能

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摘要

Abstract ZnO@NiO core–shell heterostructures with high photocatalytic efficiency and reusability were prepared via electrochemical deposition on carbon fiber cloth substrates. Their photocatalytic properties were investigated by measuring the degradation of rhodamine B and methyl orange (MO) under ultraviolet light irradiation. The photodegradation efficiency of the ZnO@NiO heterostructures toward both dyes was better than those of the pure ZnO nanorods and NiO nanosheets. The higher performance could be attributed to the formation of p–n heterojunction between ZnO and NiO. Especially, the ZnO@NiO heterostructure formed upon deposition of NiO for 10 min degraded 95% of MO under ultraviolet light irradiation for 180 min. The high photodegradation efficiency of the ZnO@NiO heterostructures was also attributed to the high separation efficiency of photogenerated carriers, as confirmed by the higher photocurrent of the ZnO@NiO heterostructures (eightfold) when compared with that of the pure ZnO nanorods. Moreover, the high photodegradation efficiency of the ZnO@NiO heterostructures was maintained over three successive degradation experiments and decreased to 90% after the third cycle.
机译:摘要通过电化学沉积在碳纤维布基板上制备具有高光催化效率和可重用性的ZnO @ NiO核 - 壳异质结构。通过测量紫外光照射下罗丹明B和甲基橙(MO)的降解来研究其光催化性质。 ZnO @ NiO异质结构朝向两种染料的光降解效率优于纯ZnO纳米棒和NiO纳米液的光降解效率。更高的性能可能归因于ZnO和NIO之间的P-N异质结的形成。特别是,在沉积NiO时形成的ZnO @ NiO异质结构10分钟,在紫外光照射下降解了95%的Mo,持续180分钟。 ZnO @NiO异质结构的高光降解效率也归因于光生载体的高分离效率,与ZnO @ NiO型异质结构(8倍)的较高光电流的确认,与纯ZnO纳米棒相比。此外,ZnO @ NiO异质结构的高光降解效率在三个连续的降解实验中保持并在第三个循环后降低至90%。

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