β-环糊精和还原氧化石墨烯负载Ag-TiO2复合材料在阳光下增强尿素的光催化氧化。

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Palak Soni, Bonamali Pal, Raj Kumar Das
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引用次数: 0

摘要

尿素氧化对促进农业增长至关重要,这可以满足世界各地的粮食需求。它是将氮转化为作物可用的硝酸盐的关键,从而防止氮流失到大气中。本研究的重点是通过掺入β-CD (β-环糊精)、RGO(还原氧化石墨烯)和Ag来提高TiO2的光降解效率,以提高硝酸盐的转化率。采用FT-IR、DRS、PL、EDX、XRD、XPS、HR-TEM、DLS、FESEM等方法对材料进行表征。其中,季元复合材料β-CD/Ag-TiO2/RGO表现出优异的性能,在阳光照射下,反应时间为150 min,降解效率为86.2%,硝酸盐收率为27.8%。β-CD/Ag- tio2 /RGO的光活性增强有几个因素,包括β-CD的高表面积和吸收能力,RGO的高电子迁移率,Ag的局部表面等离子体共振效应,延长了催化剂对可见光的响应。本研究的一个有趣的方面是将气态氮包封在β-CD的疏水性内腔中,有助于增强尿素氧化。这些发现对农业学家和化学家来说都是非常重要的,为设计新型光催化剂来改善尿素氧化,从而提高农业生产力提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
β-Cyclodextrin and reduced graphene oxide loaded Ag-TiO2 composites for enhanced photocatalytic oxidation of urea under sunlight.

Urea oxidation is important to increase agricultural growth, which can meet food requirements across the world. It is pivotal for converting nitrogen to nitrate that is usable by crops, thus preventing nitrogen loss to the atmosphere. This study focuses on improving the photodegradation efficiency of TiO2 by incorporating β-CD (beta-cyclodextrin), RGO (reduced graphene oxide), and Ag to enhance nitrate conversion. FT-IR, DRS, PL, EDX, XRD, XPS, HR-TEM DLS, and FESEM were conducted to characterize these materials. Among all the catalysts, the quaternary composite, β-CD/Ag-TiO2/RGO, exhibited superior performance, achieving an 86.2% degradation efficiency with a 27.8% nitrate yield under sunlight irradiation within 150 min of reaction time. Several factors contribute to the enhanced photoactivity of β-CD/Ag-TiO2/RGO, including the high surface area and absorptive power of β-CD, the large electronic mobility of RGO, and the localized surface plasmonic resonance effect of Ag, extending the catalyst's response to visible light. An intriguing aspect of this study is the encapsulation of gaseous nitrogen into the hydrophobic interior cavity of β-CD, contributing to the enhancement of urea oxidation. These findings can be very substantial for both agriculturists and chemists, providing valuable insights into designing novel photocatalysts for improved urea oxidation, thereby enhancing agricultural productivity.

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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
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