Optimizing Ni–Cr patterned boron-doped diamond band electrodes: Doping effects on electrochemical efficiency and posaconazole sensing performance

IF 5.6 1区 化学 Q1 CHEMISTRY, ANALYTICAL Talanta Pub Date : 2024-07-08 DOI:10.1016/j.talanta.2024.126519
Anna Dettlaff , Michał Rycewicz , Łukasz Macewicz , Paweł Rutecki , Mirosław Sawczak , Paul Wittendorp , Shruti Jain , Elizaveta Vereshchagina , Robert Bogdanowicz
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Abstract

There is growing interest in developing diamond electrodes with defined geometries such as, for example, micrometer-sized electrode arrays to acquire signals for electroanalysis. For electroanalytical sensing applications, it is essential to achieve precise conductive patterns on the insulating surface. This work provides a novel approach to boron-doped diamond patterning using nichrome masking for selective seeding on an oxidized silicon substrate. The optimized process involves nichrome deposition, sonication, chemical etching, seeding, and tailored chemical vapor deposition of boron-doped diamond with an intrinsic layer to suppress boron diffusion. Through a systematic investigation, it was determined that isolated boron-doped diamond band electrodes can be efficiently produced on non-conductive silica. Additionally, the influence of boron doping on electrochemical performance was studied, with higher doping enhancing the electrochemical response of band electrodes. To demonstrate sensing capabilities, boron-doped diamond bands were used to detect posaconazole, an antifungal drug, exploiting its electroactive behaviour. A linear correlation between posaconazole concentration and oxidation peak current was observed over 1.43 × 10−8 – 5.71 × 10−6 M with a 1.4 × 10−8 M detection limit. The developed boron-doped diamond microbands could significantly impact the field of electroanalysis, facilitating detection of diverse biologically relevant molecules. Overall, this diamond patterning approach overcomes major challenges towards all-diamond electrochemical sensor chips.

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优化掺硼的镍铬图形金刚石带状电极:掺杂对电化学效率和泊沙康唑传感性能的影响
人们对开发具有特定几何形状的金刚石电极越来越感兴趣,例如用于获取电分析信号的微米级电极阵列。对于电分析传感应用而言,在绝缘表面实现精确的导电图案至关重要。这项研究提供了一种在氧化硅基底上使用镍铬掩膜选择性播种的掺硼金刚石图案化新方法。优化后的工艺包括镍铬沉积、超声处理、化学蚀刻、播种,以及掺硼金刚石的定制化学气相沉积和抑制硼扩散的固有层。通过系统研究,可以确定在不导电的二氧化硅上可以有效地生产出孤立的掺硼金刚石带状电极。此外,还研究了硼掺杂对电化学性能的影响,掺杂量越高,带状电极的电化学响应越强。为了展示传感能力,我们利用掺硼金刚石带电极的电活性特性来检测抗真菌药物泊沙康唑。在 1.43 × 10-8 - 5.71 × 10-6 M 的范围内,观察到了泊沙康唑浓度与氧化峰电流之间的线性关系,检测限为 1.4 × 10-8 M。所开发的掺硼金刚石微带可对电分析领域产生重大影响,促进对各种生物相关分子的检测。总之,这种金刚石图案化方法克服了全金刚石电化学传感器芯片所面临的主要挑战。
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来源期刊
Talanta
Talanta 化学-分析化学
CiteScore
12.30
自引率
4.90%
发文量
861
审稿时长
29 days
期刊介绍: Talanta provides a forum for the publication of original research papers, short communications, and critical reviews in all branches of pure and applied analytical chemistry. Papers are evaluated based on established guidelines, including the fundamental nature of the study, scientific novelty, substantial improvement or advantage over existing technology or methods, and demonstrated analytical applicability. Original research papers on fundamental studies, and on novel sensor and instrumentation developments, are encouraged. Novel or improved applications in areas such as clinical and biological chemistry, environmental analysis, geochemistry, materials science and engineering, and analytical platforms for omics development are welcome. Analytical performance of methods should be determined, including interference and matrix effects, and methods should be validated by comparison with a standard method, or analysis of a certified reference material. Simple spiking recoveries may not be sufficient. The developed method should especially comprise information on selectivity, sensitivity, detection limits, accuracy, and reliability. However, applying official validation or robustness studies to a routine method or technique does not necessarily constitute novelty. Proper statistical treatment of the data should be provided. Relevant literature should be cited, including related publications by the authors, and authors should discuss how their proposed methodology compares with previously reported methods.
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