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超声化学法制备氧化铋纳米管修饰剥离石墨用于电化学检测丙咪嗪

Sonochemical preparation of bismuth oxide nanotiles decorated exfoliated graphite for the electrochemical detection of imipramine.

机构信息

Electroanalysis and Bioelectrochemistry Lab, Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, Taipei 106, Taiwan.

Electroanalysis and Bioelectrochemistry Lab, Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, Taipei 106, Taiwan.

出版信息

Ultrason Sonochem. 2020 Jun;64:105014. doi: 10.1016/j.ultsonch.2020.105014. Epub 2020 Feb 7.

Abstract

This work described the sonohydrolysis of Bi(NO) into BiO and simultaneous sonochemical exfoliation of graphite into graphene sheets in the alkaline environment and its electocatalytic performance towards the detection of anti-depression drug imipramine (IMPR). The ultrasound (37/80 kHz; 60 W) effectively hydrolyzed the Bi(NO) into a single crystalline monoclinic phase of BiO nanotiles in the alkaline condition. And also, the sonochemical reaction condition can trigger the lamellar particles on the graphite bulk surface and allowed to exfoliated the graphite (EG) into graphene nanosheets as well. The material characterizations are done by XRD, Raman, FESEM, and HRTEM. It shows the α-BiO nanotiles along with EG nanosheets with high crystallinity and low defects. The (0 0 2) plane in XRD confirms the high crystalline nature of EG. The monoclinic stretching vibrations (90-600 cm) confirms the Raman modes of BiO. The prepared BiO-EG composites are subjected to the electrochemical determination of IMPR which revealed appreciable analytical performances. The results showed that the BiO-EG exhibits better results in the 3 h sonication process. BiO-EG-3 exhibited a good linear range (0.02-82.3 µM) and an acceptable limit of detection (6 nM). And also BiO-EG-3 exhibits the significant tolerance limit when compared to other potential interfering compounds.

摘要

这项工作描述了在碱性环境中,通过超声水解将 Bi(NO)转化为 BiO纳米管,并同时将石墨超声剥离成石墨烯片,以及其对抗抑郁药物丙咪嗪(IMPR)检测的电催化性能。超声(37/80 kHz;60 W)在碱性条件下有效地将 Bi(NO)水解为单斜相 BiO纳米管。此外,超声化学反应条件还可以引发石墨块状表面的层状颗粒,并将石墨(EG)剥离成石墨烯纳米片。通过 XRD、拉曼、FESEM 和 HRTEM 对材料进行了表征。结果表明,α-BiO 纳米管与 EG 纳米片具有高结晶度和低缺陷。XRD 中的(0 0 2)平面证实了 EG 的高结晶性。拉曼模式证实了 BiO 的单斜拉伸振动(90-600 cm)。制备的 BiO-EG 复合材料用于 IMPR 的电化学测定,结果显示出可观的分析性能。结果表明,BiO-EG 在 3 小时超声处理过程中表现出更好的结果。BiO-EG-3 表现出良好的线性范围(0.02-82.3 μM)和可接受的检测限(6 nM)。与其他潜在干扰化合物相比,BiO-EG-3 还表现出显著的容忍极限。

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