首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Caralluma fimbriata extract induced green synthesis, structural, optical and photocatalytic properties of ZnO nanostructure modified with Gd
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Caralluma fimbriata extract induced green synthesis, structural, optical and photocatalytic properties of ZnO nanostructure modified with Gd

机译:Caralluma fimbriata提取物诱导Gd修饰的ZnO纳米结构的绿色合成,结构,光学和光催化性能

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We have reported Caralluma fimbriata extract induced simple single step green synthesis of pure and Gd loaded ZnO nanostructures towards the improvement of photocatalytic performance under both UV and Sunlight irradiation. Band gap of 2.97 eV and 95 Omega of charge transfer resistance displayed highest decolorization effectiveness of 90 and 98% underneath UV and Sunlight irradiation respectively for Gd loaded ZnO (1 mol%). The reason for the enhancement ascribed to electron trap generated by the special 7f electronic configuration of Gd3+ which could increase the separation of the photo induced electron hole pairs and promoted charge transfer within the nanostructures. The photoluminescence spectrum consists of peak at similar to 363 nm, similar to 452 nm and similar to 545 nm, color co-ordinates (0.14665, 0.31283) and average correlated color temperature similar to 28465 K. Therefore, Gd-loaded nanostructures can be exercised as prospective photocatalyst as well as phosphors in display applications. (C) 2016 Elsevier B.V. All rights reserved.
机译:我们已经报道了Caralluma fimbriata提取物诱导了纯的和Gd负载的ZnO纳米结构的简单一步绿色合成,从而改善了UV和阳光照射下的光催化性能。 2.97 eV的带隙和95Ω的电荷转移电阻显示,在掺有Gd的ZnO(1 mol%)下,紫外线和阳光照射下的最高脱色效果分别为90%和98%。增强的原因归因于Gd3 +的特殊7f电子结构产生的电子陷阱,该电子陷阱可以增加光致电子空穴对的分离并促进纳米结构内的电荷转移。光致发光光谱由类似于363 nm,类似于452 nm和545 nm的峰,色坐标(0.14665,0.31283)和平均相关色温类似于28465 K组成。因此,可以利用Gd负载的纳米结构在显示应用中用作准光催化剂和磷光体。 (C)2016 Elsevier B.V.保留所有权利。

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