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首页> 外文期刊>Analytica chimica acta >A simple and an efficient strategy to synthesize multi-component nanocomposites for biosensor applications
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A simple and an efficient strategy to synthesize multi-component nanocomposites for biosensor applications

机译:一种简单高效的生物传感器应用合成多组分纳米复合材料的策略

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We demonstrate that core-shell multi-component nanocomposites can be grown in situ at room temperature by a novel one-step approach without adding any reductant and stabilizer. We have presented a one-step method for the synthesis of multi-component nanocomposites in water solution, the multi-component nanocomposites could be produced directly and quickly in an in situ wet-chemical reaction. Here, Au-polypyrrole (PPy)/Prussian blue (PB) nanocomposites have been synthesized successfully under the same circumstance. With the addition of pyrrole monomers into mixture solutions, the autopoly-merization of pyrrole into PPy and AuCl4~- was reduced to elemental Au instantaneously as well as simultaneously. At the same time, PB produced along with elemental Au serving as a catalyst. Furthermore, we investigated the performance of Au-PPy/PB nanocomposites as amperometric sensor toward the reduction of H2O2, which displayed high sensitivity, fast response and good stability. The peak current of H2O2 increased linearly with the concentration of H2O2 in the range from 2.5 x 10~(-9) to 1.2 x 10~(-6)M,and the low detection limit of 8.3 x 10~(-10) M (S/N = 3) was obtained. Therefore, this work provides a new pathway to design and fabricate novel multi-component nanocomposites, which have unique characteristics and hold great applications in the fields of sensors, electrocatalysis and others.
机译:我们证明了核壳多组分纳米复合材料可以通过一种新颖的一步方法在室温下原位生长,而无需添加任何还原剂和稳定剂。我们提出了一种在水溶液中合成多组分纳米复合材料的一步法,该多组分纳米复合材料可以在原位湿化学反应中直接,快速地生产。在这种情况下,已经成功地合成了金-聚吡咯(PPy)/普鲁士蓝(PB)纳米复合材料。通过将吡咯单体添加到混合溶液中,吡咯在PPy和AuCl4-中的自发聚合同时或同时还原为元素Au。同时,PB与元素金一起生成作为催化剂。此外,我们研究了Au-PPy / PB纳米复合材料作为安培传感器对减少H2O2的性能,显示出高灵敏度,快速响应和良好的稳定性。 H2O2的峰值电流随H2O2浓度在2.5 x 10〜(-9)至1.2 x 10〜(-6)M范围内线性增加,最低检测极限为8.3 x 10〜(-10)M得到(S / N = 3)。因此,这项工作为设计和制造新颖的多组分纳米复合材料提供了一条新途径,该复合材料具有独特的特性,在传感器,电催化等领域具有广阔的应用前景。

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