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通过将亚硫酸盐氧化酶封装在装饰有铂纳米粒子的聚吡咯-多壁碳纳米管复合材料上制备新型亚硫酸盐纳米生物传感器的分层结构制造法。

Layered Architectural Fabrication of a Novel Sulfite Nanobiosensor by Encapsulation of Sulfite Oxidase on a Polypyrrole-Multiwalled Carbon Nanotubes Composite Decorated with Platinum Nanoparticles.

作者信息

Hussain Shahid, Adeloju Samuel B

机构信息

School of Chemistry, Monash University, Clayton, Victoria, 3800, Australia.

Faculty of Science & Health, Charles Sturt University, Albury, NSW, 2640, Australia.

出版信息

Small. 2024 Sep;20(39):e2305333. doi: 10.1002/smll.202305333. Epub 2023 Oct 19.

Abstract

The fabrication of a highly selective and ultrasensitive sulfite nanobiosensor based on a layered architectural fabrication aided by the encapsulation of sulfite oxidase (SOx) in Nafion (Naf) matrix on a multiwalled carbon nanotubes-polypyrrole (MWCNTs-PPy) composite decorated with platinum nanoparticles (PtNPs) is described. The MWCNTs are deposited in the inner layer on a Pt electrode during electropolymerization of pyrrole (Py), followed by decoration with a PtNPs layer and subsequent encapsulation of SOx with Naf in the third layer capped with a fourth thin PtNPs layer. Images obtained by field emission scanning electron microscopy (FESEM) reveal that high-density PtNPs are deposited onto the 3D nanostructured inner MWCNTs-PPy layer and the electrochemical behavior is investigated. A large surface area provided by the incorporation of MWCNTs in the composite and decoration with PtNPs enables increased SOx loading, SOx retention, and substantial improvement in sensing performance. The resulting layered PtNPs/SOx-Naf/PtNPs/MWCNTs-PPy nanobiosensor exhibits a fast response time (within 3 s), a linear calibration range of 20 nmm - 6 m with an excellent sensitivity of 71 µA mm cm and a detection limit of 5.4 nm. The nanobiosensor  was effective in discriminating against common interferants and  was successfully applied to sulfite determination in real samples.

摘要

描述了一种基于分层结构制造的高选择性和超灵敏亚硫酸盐纳米生物传感器的制备方法,该方法通过将亚硫酸盐氧化酶(SOx)封装在多壁碳纳米管-聚吡咯(MWCNTs-PPy)复合材料上的Nafion(Naf)基质中,并装饰有铂纳米颗粒(PtNPs)。在吡咯(Py)的电聚合过程中,MWCNTs沉积在Pt电极的内层,随后用PtNPs层进行装饰,接着在第三层用Naf封装SOx,并在第四层覆盖一层薄的PtNPs层。通过场发射扫描电子显微镜(FESEM)获得的图像显示,高密度的PtNPs沉积在三维纳米结构的内层MWCNTs-PPy层上,并对其电化学行为进行了研究。复合材料中MWCNTs的加入和PtNPs的装饰提供了大的表面积,使得SOx的负载量增加、SOx保留率提高,传感性能得到显著改善。所得的分层PtNPs/SOx-Naf/PtNPs/MWCNTs-PPy纳米生物传感器具有快速响应时间(3秒内)、20 nmol/L - 6 mmol/L的线性校准范围、71 μA/(mmol/L·cm²)的优异灵敏度和5.4 nmol/L的检测限。该纳米生物传感器能够有效区分常见干扰物,并成功应用于实际样品中亚硫酸盐的测定。

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