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首页> 外文期刊>Electrochimica Acta >Nanoporous Cu2O nanotube/nanorod array electrodes for non-enzymatic glucose sensing with high sensitivity and very low detection limit
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Nanoporous Cu2O nanotube/nanorod array electrodes for non-enzymatic glucose sensing with high sensitivity and very low detection limit

机译:纳米孔Cu2O纳米管/纳米峰阵列电极,用于非酶促葡萄糖感测,具有高灵敏度和极低检测极限

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摘要

This study compares the non-enzymatic glucose sensing performance by Cu2O nanorods/nanotubes grown using electrochemically anodized Cu foam and Cu plates to form binder free one-dimensional Cu(OH)(2) nanostructures which were subsequently annealed at higher temperatures. Resulting Cu2O nanorods/nanotubes had diameters between 100 and 200 nm and lengths in excess of 10 mm. The surface morphology and structure of these thin films studied using scanning electron microscopy, X-ray diffraction and energy dispersive X-ray spectroscopy showed that the copper foam based Cu2O structures consisted of nanotubes/nanorods distributed over entire 3-dimensional space containing dense nanopores of size similar to 20 nm on outer surfaces. Cu plate based nanorods consisted of grooved macaroni type surface morphologies. Non-enzymatic glucose sensing made using chronoamperometric and cyclic voltammetric measurements showed that the Cu2O/Cu foam electrodes had a high sensitivity of 5792.7 mu AmM-1 cm(-2), a very low detection limit of 15 nM (S/N = 3), multi-linear detection ranges of 15 nM-0.1 mu M and 575-4098.9 mu M with a faster response time of less than 1 s. Cu plate based nanorods showed a sensitivity of 141.9 mu AmM-1 cm(-2), with a lower detection limit of 510 nM (S/N = 3). The significantly high sensitivity of Cu2O/Cu foam electrodes is attributed to the availability of increased amount of active sites due to the large effective surface area provided by Cu2O nanorods/nanotubes. The study also demonstrates the influence of the substrate on surface morphology of the nanorods/nanotubes. These Cu foam based Cu2O electrodes provide a promising platform for non-enzymatic glucose detection with high specificity and reproducibility. (C) 2019 Elsevier Ltd. All rights reserved.
机译:该研究比较了使用电化学阳极氧化Cu泡沫和Cu平板生长的Cu2O纳米棒/纳米管的非酶促葡萄糖感测性能,以形成粘合剂自由一维Cu(OH)(2)纳米结构,其随后在较高温度下退火。得到Cu2O纳米棒/纳米管的直径在100至200nm之间,长度超过10mm。使用扫描电子显微镜研究的这些薄膜的表面形貌和结构,X射线衍射和能量分散X射线光谱显示,基于铜泡沫的Cu2O结构由纳米管/纳米棒组成,该纳米管/纳米棒分布在含有含有密集纳米孔的整个三维空间上外表面上类似于20nm的尺寸。基于Cu板的纳米棒由带槽通心面型表面形态组成。使用计时率和循环伏安测量制备的非酶促葡萄糖感测显示Cu2O / Cu泡沫电极具有5792.7μm-1cm(-2)的高灵敏度,检测限为15nm(s / n = 3 ),多线性检测范围为15nm-0.1μm和575-4098.9μm,响应时间的响应时间小于1 s。 Cu板基纳米棒显示出141.9μm-1cm(-2)的灵敏度,检测限为510nm(s / n = 3)。 Cu2O / Cu泡沫电极的显着高灵敏度归因于Cu 2 O纳米棒/纳米管提供的大有效表面积,所述活性位点增加的可用性。该研究还表明基材对纳米棒/纳米管的表面形态的影响。这些Cu泡沫基的Cu2O电极提供了具有高特异性和再现性的非酶促葡萄糖检测的有希望的平台。 (c)2019 Elsevier Ltd.保留所有权利。

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