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首页> 外文期刊>RSC Advances >Au@Pd core-shell nanoparticles-decorated reduced graphene oxide: a highly sensitive and selective platform for electrochemical detection of hydrazine
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Au@Pd core-shell nanoparticles-decorated reduced graphene oxide: a highly sensitive and selective platform for electrochemical detection of hydrazine

机译:Au @ Pd核 - 壳纳米粒子装饰的含石墨烯氧化物:一种高敏感和选择性平台,用于肼的电化学检测

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摘要

The tailored fabrication of noble metal-based bimetallic nanoparticles-decorated reduced graphene oxide (rGO) is highly demanding for its use as a clean and recyclable substrate for electrochemical performances. Herein, we have successfully prepared Au-core@Pd-shell with an average size of similar to 11.5 nm on an rGO support (denoted as GAP) through a surfactant-free one-step synthetic protocol. The use of 2-propanol as a solvent as well as a reducing agent for the precursors demonstrates that the designed process is economically preferable for the scalable synthesis of the desired GAP material. Comparative electrocatalytic efficiency in terms of hydrazine (N2H4) oxidation reveals the optimized noble-metal loading on rGO nanosheets and also the composition to capitalize maximum advantage from the as-synthesized GAP material. The most effective electrocatalyst, GAP3 with optimized constituents, was then applied as a substrate to electrochemically determine N2H4 down to a trace concentration level with high selectivity and sensitivity. The limit of detection (LOD) from GAP3 is calculated to be 0.08 mu M with a linear range of 2-40 mu M from the chronoamperometric (CA) result at 0.15 V vs. SCE. The novelty of N2H4 detection by the designed substrate becomes evident while all of the related reports are reviewed. This electrochemical sensor was successfully applied further to detect trace-level N2H4 in various real water samples, indicating its promising practical application.
机译:贵金属基金属的双金属纳米颗粒的定制制造装饰的石墨烯氧化物(RGO)对于其用作用于电化学性能的清洁和可再循环的基材来说是非常苛刻的。在此,我们通过无表面活性剂的单步合成方案成功地制备了具有相似与11.5nm的平均尺寸的Au-Core @ Pd-shell。使用2-丙醇作为溶剂以及用于前体的还原剂表明,设计方法在经济上优选用于所需间隙材料的可扩展合成。肼(N2H4)氧化方面的比较电催化效率揭示了RGO纳米片的优化贵金属负载,以及组合物以利用由合成的间隙材料中的最大优势。然后将最有效的电催化剂,具有优化成分的GAP3作为基板施加,以将N 2 H 4电气化学确定为具有高选择性和敏感性的痕量浓度水平。从GAP3的检测极限(LOD)计算为0.08μm,线性范围为2-40μm,从计时率(CA),结果为0.15 V与SCE。设计基板的N2H4检测的新颖性变得明显,而所有相关报告都被审查。该电化学传感器成功地应用于检测各种真实水样中的痕量N2H4,表明其有希望的实际应用。

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  • 来源
    《RSC Advances》 |2015年第64期|共11页
  • 作者单位

    Indian Inst Technol Dept Chem Kharagpur 721302 W Bengal India;

    Indian Inst Technol Dept Chem Kharagpur 721302 W Bengal India;

    Indian Inst Technol Dept Chem Kharagpur 721302 W Bengal India;

    Indian Inst Technol Dept Chem Kharagpur 721302 W Bengal India;

    Indian Inst Technol Dept Chem Kharagpur 721302 W Bengal India;

    Indian Inst Technol Dept Chem Kharagpur 721302 W Bengal India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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