{"title":"合成具有增强电化学传感性能的聚苯胺/铋磷复合氧化物纳米线","authors":"Chenxu Feng, Zhangjie Ban, Jianfeng Huang, Yong Zhang, Zhengyu Cai, Lizhai Pei","doi":"10.2174/0115734129317923240808114505","DOIUrl":null,"url":null,"abstract":"Background: Considerable interest has been devoted to electrochemical sensors for the detection of L-cysteine using BiPr-based oxide-modified electrodes due to high specific surface area and good electro-catalytic activity with several oxidation states. The combination of the BiPr composite oxide nanowires with polyaniline (PAn) can promote the electro-catalytic performance towards L-cysteine because PAn can facilitate the electro-catalytic process by enhancing the charge transfer. Methods: PAn/BiPr composite oxide nanowires were obtained via low temperature one-step hydrothermal route. The obtained composite oxide nanowires were analyzed by X-ray diffraction, electron microscopy, and electrochemical methods. Results: Characterization results indicate that amorphous PAn nanoparticles with a size of about 50 nm are homogeneously dispersed at the surface of the BiPr composite oxide nanowires. PAn/BiPr composite oxide nanowire-modified electrode shows an enhanced L-cysteine electro-catalytic activity. PAn promotes electro-catalytic activity of the BiPr composite oxide nanowires. A pair of quasi-reversible cyclic voltammetry (CV) peaks exist at +0.49 V, -0.19 V, respectively. PAn/BiPr composite oxide nanowire modified electrode possesses a linear response in L-cysteine concentration of 0.001-2 mM and detection limit of 0.095 μM, good repeatability, and stability. Conclusion: PAn/BiPr composite oxide nanowires act as effective electro-catalysts for L-cysteine oxidation resulting in the enhancement of the electro-catalytic activity relative to BiPr composite oxide nanowires.","PeriodicalId":0,"journal":{"name":"","volume":"48 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-08-13","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Synthesis of Polyaniline/BiPr Composite Oxide Nanowires with Enhanced Electrochemical Sensing Performance\",\"authors\":\"Chenxu Feng, Zhangjie Ban, Jianfeng Huang, Yong Zhang, Zhengyu Cai, Lizhai Pei\",\"doi\":\"10.2174/0115734129317923240808114505\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Background: Considerable interest has been devoted to electrochemical sensors for the detection of L-cysteine using BiPr-based oxide-modified electrodes due to high specific surface area and good electro-catalytic activity with several oxidation states. The combination of the BiPr composite oxide nanowires with polyaniline (PAn) can promote the electro-catalytic performance towards L-cysteine because PAn can facilitate the electro-catalytic process by enhancing the charge transfer. Methods: PAn/BiPr composite oxide nanowires were obtained via low temperature one-step hydrothermal route. The obtained composite oxide nanowires were analyzed by X-ray diffraction, electron microscopy, and electrochemical methods. Results: Characterization results indicate that amorphous PAn nanoparticles with a size of about 50 nm are homogeneously dispersed at the surface of the BiPr composite oxide nanowires. PAn/BiPr composite oxide nanowire-modified electrode shows an enhanced L-cysteine electro-catalytic activity. PAn promotes electro-catalytic activity of the BiPr composite oxide nanowires. A pair of quasi-reversible cyclic voltammetry (CV) peaks exist at +0.49 V, -0.19 V, respectively. PAn/BiPr composite oxide nanowire modified electrode possesses a linear response in L-cysteine concentration of 0.001-2 mM and detection limit of 0.095 μM, good repeatability, and stability. Conclusion: PAn/BiPr composite oxide nanowires act as effective electro-catalysts for L-cysteine oxidation resulting in the enhancement of the electro-catalytic activity relative to BiPr composite oxide nanowires.\",\"PeriodicalId\":0,\"journal\":{\"name\":\"\",\"volume\":\"48 1\",\"pages\":\"\"},\"PeriodicalIF\":0.0,\"publicationDate\":\"2024-08-13\",\"publicationTypes\":\"Journal Article\",\"fieldsOfStudy\":null,\"isOpenAccess\":false,\"openAccessPdf\":\"\",\"citationCount\":\"0\",\"resultStr\":null,\"platform\":\"Semanticscholar\",\"paperid\":null,\"PeriodicalName\":\"\",\"FirstCategoryId\":\"3\",\"ListUrlMain\":\"https://doi.org/10.2174/0115734129317923240808114505\",\"RegionNum\":0,\"RegionCategory\":null,\"ArticlePicture\":[],\"TitleCN\":null,\"AbstractTextCN\":null,\"PMCID\":null,\"EPubDate\":\"\",\"PubModel\":\"\",\"JCR\":\"\",\"JCRName\":\"\",\"Score\":null,\"Total\":0}","platform":"Semanticscholar","paperid":null,"PeriodicalName":"","FirstCategoryId":"3","ListUrlMain":"https://doi.org/10.2174/0115734129317923240808114505","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
摘要
背景:基于 BiPr 的氧化物修饰电极具有高比表面积和多种氧化态下良好的电催化活性,因此人们对使用这种电极检测 L-半胱氨酸的电化学传感器产生了浓厚的兴趣。BiPr 复合氧化物纳米线与聚苯胺(PAn)的结合可提高对 L-半胱氨酸的电催化性能,因为 PAn 可通过增强电荷转移促进电催化过程。研究方法通过低温一步水热法获得 PAn/BiPr 复合氧化物纳米线。采用 X 射线衍射、电子显微镜和电化学方法对所获得的复合氧化物纳米线进行分析。结果表明表征结果表明,BiPr 复合氧化物纳米线表面均匀分散着大小约为 50 纳米的无定形 PAn 纳米颗粒。PAn/BiPr复合氧化物纳米线修饰电极显示出更强的L-半胱氨酸电催化活性。PAn 提高了 BiPr 复合氧化物纳米线的电催化活性。一对准可逆循环伏安(CV)峰分别出现在 +0.49 V 和 -0.19 V。PAn/BiPr 复合氧化物纳米线修饰电极在 L-半胱氨酸浓度为 0.001-2 mM 时呈线性响应,检测限为 0.095 μM,具有良好的重复性和稳定性。结论PAn/BiPr 复合氧化物纳米线是一种有效的 L-半胱氨酸氧化电催化剂,与 BiPr 复合氧化物纳米线相比,它提高了电催化活性。
Synthesis of Polyaniline/BiPr Composite Oxide Nanowires with Enhanced Electrochemical Sensing Performance
Background: Considerable interest has been devoted to electrochemical sensors for the detection of L-cysteine using BiPr-based oxide-modified electrodes due to high specific surface area and good electro-catalytic activity with several oxidation states. The combination of the BiPr composite oxide nanowires with polyaniline (PAn) can promote the electro-catalytic performance towards L-cysteine because PAn can facilitate the electro-catalytic process by enhancing the charge transfer. Methods: PAn/BiPr composite oxide nanowires were obtained via low temperature one-step hydrothermal route. The obtained composite oxide nanowires were analyzed by X-ray diffraction, electron microscopy, and electrochemical methods. Results: Characterization results indicate that amorphous PAn nanoparticles with a size of about 50 nm are homogeneously dispersed at the surface of the BiPr composite oxide nanowires. PAn/BiPr composite oxide nanowire-modified electrode shows an enhanced L-cysteine electro-catalytic activity. PAn promotes electro-catalytic activity of the BiPr composite oxide nanowires. A pair of quasi-reversible cyclic voltammetry (CV) peaks exist at +0.49 V, -0.19 V, respectively. PAn/BiPr composite oxide nanowire modified electrode possesses a linear response in L-cysteine concentration of 0.001-2 mM and detection limit of 0.095 μM, good repeatability, and stability. Conclusion: PAn/BiPr composite oxide nanowires act as effective electro-catalysts for L-cysteine oxidation resulting in the enhancement of the electro-catalytic activity relative to BiPr composite oxide nanowires.