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Multisensor Systems by Electrochemical Nanowire Assembly for the Analysis of Aqueous Solutions

机译:电化学纳米线组装的多传感器系统用于水溶液分析

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摘要

The development of electrochemical multisensor systems is driven by the need for fast, miniature, inexpensive, analytical devices, and advanced interdisciplinary based on both chemometric and (nano)material approaches. A multicomponent analysis of complex mixtures in environmental and technological monitoring, biological samples, and cell culture requires chip-based multisensor systems with high-stability sensors. In this paper, we describe the development, characterization, and applications of chip-based nanoelectrochemical sensor arrays prepared by the directed electrochemical nanowire assembly (DENA) of noble metals and metal alloys to analyze aqueous solutions. A synergic action of the electrode transducer function and electrocatalytic activity of the nanostructured surface toward analytes is achieved in the assembled metal nanowire (NW) sensors. Various sensor nanomaterials (Pd, Ni, Au, and their multicomponent compositions) can be electrochemically assembled on a single chip without employing multiple cycles of photolithography process to realize multi-analyte sensing applications as well as spatial resolution of sensor analysis by this single-chip multisensor system. For multi-analyte electrochemical sensing, individual amperometric signals of two or more nanowires can be acquired, making use of the specific electrocatalytic surface properties of the individual nanowire sensors of the array toward analytes. To demonstrate the application of a new electrochemical multisensor platform, Pd-Au, Pd-Ni, Pd, and Au NW electrode arrays on a single chip were employed for the non-enzymatic analysis of hydrogen peroxide, glucose, and ethanol. The analytes are determined at low absolute values of the detection potentials with linear concentration ranges of 1.0 × 10−6 − 1.0 × 10−3 M (H2O2), 1.5 × 10−7 − 2.0 × 10−3 M (glucose), and 0.7 × 10−3 − 3.0 × 10−2 M (ethanol), detection limits of 2 × 10−7 M (H2O2), 4 × 10−8 M (glucose), and 5.2 × 10−4 M (ethanol), and sensitivities of 18 μA M−1 (H2O2), 178 μA M−1 (glucose), and 28 μA M−1 (ethanol), respectively. The sensors demonstrate a high level of stability due to the non-enzymatic detection mode. Based on the DENA-assembled nanowire electrodes of a compositional diversity, we propose a novel single-chip electrochemical multisensor platform, which is promising for acquiring complex analytical signals for advanced data processing with chemometric techniques aimed at the development of electronic tongue-type multisensor systems for flexible multi-analyte monitoring and healthcare applications.
机译:电化学多传感器系统的发展是由对基于化学计量学和(纳米)材料方法的快速,小型,廉价,分析设备以及高级跨学科的需求所驱动的。在环境和技术监测,生物样品和细胞培养中,对复杂混合物进行多组分分析需要具有高稳定性传感器的基于芯片的多传感器系统。在本文中,我们描述了由贵金属和金属合金的定向电化学纳米线组件(DENA)制备的用于分析水溶液的基于芯片的纳米电化学传感器阵列的开发,表征和应用。在组装的金属纳米线(NW)传感器中实现了电极换能器功能与纳米结构表面对分析物的电催化活性的协同作用。可以将各种传感器纳米材料(Pd,Ni,Au及其多组分组成)电化学组装在单个芯片上,而无需采用多次光刻过程来实现多分析物传感应用以及该单芯片对传感器分析的空间分辨率多传感器系统。对于多分析物电化学传感,可以利用阵列中各个纳米线传感器对分析物的特定电催化表面特性,获取两条或更多根纳米线的各个安培信号。为了演示新型电化学多传感器平台的应用,将单芯片上的Pd-Au,Pd-Ni,Pd和Au NW电极阵列用于过氧化氢,葡萄糖和乙醇的非酶分析。在线性浓度范围为1.0×10 -6 -1.0×10 -3 M(H2O2),1.5×10的低检测电位绝对值下测定分析物 −7 − 2.0×10 −3 M(葡萄糖)和0.7×10 −3 − 3.0×10 −2 < / sup> M(乙醇),检测限2×10 −7 M(H2O2),4×10 −8 M(葡萄糖)和5.2×10 < sup> −4 M(乙醇),灵敏度为18μAM -1 (H2O2),178μAM -1 (葡萄糖)和28 μAM -1 (乙醇)。由于采用非酶检测模式,因此传感器具有很高的稳定性。基于组成不同的DENA组装的纳米线电极,我们提出了一种新颖的单芯片电化学多传感器平台,该平台有望获得用于化学舌技术的先进数据处理的复杂分析信号,以开发电子舌式多传感器系统适用于灵活的多分析物监测和医疗保健应用。

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