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首页> 外文期刊>Materials Characterization >A facile salicylic acid assisted hydrothermal synthesis of different flower-like ZnO hierarchical architectures with optical and concentration-dependent photocatalytic properties
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A facile salicylic acid assisted hydrothermal synthesis of different flower-like ZnO hierarchical architectures with optical and concentration-dependent photocatalytic properties

机译:简便的水杨酸辅助水热合成具有光和浓度依赖性光催化特性的不同花状ZnO分层结构

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摘要

Different flower-like ZnO hierarchical architectures with wurtzite structure have been prepared by a facile salicylic acid (SA) assisted hydrothermal method, especially four flower-like ZnO nanostructures can be obtained simultaneously by using 18.00 mmol of SA. The petals of the flower-like ZnO architectures are mainly assembled by many of single nanorods, a mixture of single nanorods and bundle (cluster) of nanorods, or bundle of nano rods respectively. The nanorod exhibits the taper-like, hexagonal prism-like, tower-like or bamboo shoot shaped body and the pyramid-like or pencil-like tip. Photoluminescence (PL) study shows two tunable wavelengths (542 nm and 565 nm). All the samples exhibit the similar Raman spectra. With increasing the amount of SA, the peak at 441 cm(-1) increases. The photodegradation rates of MB are more effective than these of MO, and the sample from 22.50 mmol of SA decomposes 55% of MB within 140 min. The activity of photocatalysts is significantly affected by the concentration of SA. With the increase of SA, the number of nanorods of the flower-like ZnO nanostructures increases, and leads to the improvement of photocurrent response and photocatalytic performance. (C) 2016 Elsevier Inc. All rights reserved.
机译:通过水杨酸(SA)辅助水热法制备了具有纤锌矿结构的不同花状ZnO分层结构,特别是通过使用18.00 mmol的SA可以同时获得四个花状ZnO纳米结构。花状ZnO结构的花瓣主要由许多单个纳米棒,单个纳米棒和纳米棒束(簇)或纳米棒束的混合物组装而成。纳米棒表现出锥状,六角棱柱状,塔状或竹笋状的主体以及金字塔状或铅笔状的尖端。光致发光(PL)研究显示了两个可调波长(542 nm和565 nm)。所有样品均表现出相似的拉曼光谱。随着SA量的增加,在441 cm(-1)处的峰增加。 MB的光降解速率比MO的光降解速率更有效,并且来自22.50 mmol的SA的样品在140分钟内分解了55%的MB。 SA的浓度显着影响光催化剂的活性。随着SA的增加,花状ZnO纳米结构的纳米棒数量增加,并导致光电流响应和光催化性能的改善。 (C)2016 Elsevier Inc.保留所有权利。

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