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首页> 外文期刊>ACS applied materials & interfaces >One-Pot Sustainable Synthesis of Ce2S3/Gum Arabic Carbon Flower Nanocomposites for the Detection of Insecticide Imidacloprid
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One-Pot Sustainable Synthesis of Ce2S3/Gum Arabic Carbon Flower Nanocomposites for the Detection of Insecticide Imidacloprid

机译:用于检测杀虫剂的CE2S3 /口香糖阿拉伯碳花纳米复合材料的一锅可持续合成

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摘要

Investigating ecofriendly sustainable materials with excellent electrocatalytic activity is a pivotal approach for the analysis field. The present work reports on the preparation of novel three-dimensional (3D) cerium sulfide with gum arabic carbon flowers (Ce2S3/GACFs) via the hydrothermal method by using L-cysteine as a sulfur source, binding, and reducing agents. The intensive characterization techniques were utilized to corroborate the structural moiety, morphology, and size of Ce2S3/GACFs. The obtained 3D Ce2S3/GACF construction has excellent active sites, and hence it prevents the accumulation of carbon flowers. Furthermore, the obtained Ce2S3/GACF/glassy carbon electrode (GCE) could afford a very high electrocatalytic activity, possessing an exceedingly low detection limit of 32 nM, the high sensitivity of 2.65 mu A mu M-1 cm(-2), good repeatability, and high stability for the detection of insecticide imidacloprid (IMC). The Ce2S3/GACF/GCE also provides a wide linear range of 0.05-1266 mu M toward IMC detection. The excellent recovery results (90-99.3%) are achieved by using various spiked real food samples at Ce2S3/GACF/GCE. Confidently, this work gives up novel construction of 3D metal-carbon-based bioderived material for its catalytic application in the future.
机译:通过优异的电催化活动调查生态繁体可持续材料是分析领域的关键方法。通过使用L-半胱氨酸作为硫源,结合和还原剂,通过使用水热法制备牙龈阿拉伯碳(Ce2S3 / GaCFs)的新型三维(3D)硫化物的制备。密集的表征技术用于证实CE2S3 / GACFs的结构部分,形态和大小。所获得的3D CE2S3 / GACF结构具有优异的活性位点,因此它可以防止碳鲜花的积累。此外,所获得的CE2S3 / GACF /玻璃碳电极(GCE)可以提供非常高的电催化活性,具有32nm的极低检测限,高敏感性为2.65μm-1 cm(-2),好可重复性,以及检测杀虫剂吡虫啉(IMC)的高稳定性。 CE2S3 / GACF / GCE还为IMC检测提供了0.05-1266μm的宽线性范围。通过在Ce2S3 / GACF / GCE在Ce2S3 / GACF / GCE中使用各种尖刺的真正食物来实现优异的回收结果(90-99.3%)。自信地,这项工作促进了未来催化应用的3D金属 - 碳基生物化材料的新建设。

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