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无定形钴硼纳米片锚定表面功能化碳纳米纤维:用于电化学传感和析氧反应的双功能高效催化剂。

Amorphous cobalt boride nanosheets anchored surface-functionalized carbon nanofiber: An bifunctional and efficient catalyst for electrochemical sensing and oxygen evolution reaction.

机构信息

Electroanalysis and Bioelectrochemistry Lab, Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, No. 1, Section 3, Chung-Hsiao East Road, Taipei 106, Taiwan, ROC.

出版信息

J Colloid Interface Sci. 2020 Nov 15;580:318-331. doi: 10.1016/j.jcis.2020.07.037. Epub 2020 Jul 13.

Abstract

Development of new metal boride with carbon composite is an emerging class of catalyst and it brings enormous curiosity in the material community because of their potential intriguing properties. Here, we describe a new type of amorphous cobalt boride (A-CoB) nanosheet anchored on the surface of functionalized carbon nanofiber (A-CoB/ƒ-CNF) by a simple method. The emerged A-CoB/ƒ-CNF composite was demonstrated to possess great bifunctional electrocatalytic activity for the electrochemical sensing of antibiotic drug nitrofurantoin (NFT) and oxygen evolution reaction (OER). The prepared A-CoB/ƒ-CNF composite was characterized by various analytical and spectroscopic techniques such as XRD, FE-SEM, HR-TEM, Raman, and XPS analysis. The result from the electrochemical impedance spectroscopy confirms that the A-CoB/ƒ-CNF composite shows high electrical conductivity and the number of electron transferability for the NFT sensor and OER which is due to the presence of abundant active sites/large surface area in A-CoB, and synergistic effect between the A-CoB and ƒ-CNF. As an electrochemical sensor, the A-CoB/ƒ-CNF modified electrode shows substantial sensitivity (3.13 μA μM cm), wider linear response range (0.01- 527 μM), and lower detection limit (0.003 μM) as-compared to the previously reported noble and non-noble metal-based electrocatalyst for NFT sensor. As well, the A-CoB/ƒ-CNF composite demonstrates superior OER activity with low overpotential and small Tafel slope value of 0.35 V and 173 mV/dec, respectively, which shows advanced kinetics than noble metal catalysts. Based on the results, we believed that the present work gives clear evidence for the preparation of transition metal boride anchored carbon material with an outstanding catalytic activity, and hence, it can be also extended to further electrochemical applications.

摘要

开发具有碳复合材料的新型金属硼化物是一类新兴的催化剂,由于其潜在的有趣性质,它在材料界引起了极大的好奇心。在这里,我们通过一种简单的方法描述了一种新型的非晶态钴硼化物(A-CoB)纳米片锚定在功能化碳纤维(A-CoB/ƒ-CNF)表面上。所得到的 A-CoB/ƒ-CNF 复合材料被证明对电化学检测抗生素药物呋喃妥因(NFT)和析氧反应(OER)具有很好的双功能电催化活性。通过各种分析和光谱技术,如 XRD、FE-SEM、HR-TEM、Raman 和 XPS 分析,对制备的 A-CoB/ƒ-CNF 复合材料进行了表征。电化学阻抗谱的结果证实,A-CoB/ƒ-CNF 复合材料具有高导电性和 NFT 传感器和 OER 的电子转移能力,这是由于 A-CoB 中存在丰富的活性位点/大表面积,以及 A-CoB 和 ƒ-CNF 之间的协同作用。作为电化学传感器,A-CoB/ƒ-CNF 修饰电极表现出较高的灵敏度(3.13 μA μM cm)、较宽的线性响应范围(0.01-527 μM)和较低的检测限(0.003 μM),与以前报道的用于 NFT 传感器的贵金属和非贵金属基电催化剂相比。同样,A-CoB/ƒ-CNF 复合材料表现出优异的 OER 活性,具有较低的过电位和较小的 Tafel 斜率值,分别为 0.35 V 和 173 mV/dec,表现出比贵金属催化剂更快的动力学。基于这些结果,我们相信本工作为制备具有优异催化活性的过渡金属硼化物锚定碳材料提供了明确的证据,因此,它也可以扩展到进一步的电化学应用中。

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