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结合双金属纳米粒子的生物/化学传感器制造的演变趋势。

Evolving trends in bio/chemical sensor fabrication incorporating bimetallic nanoparticles.

机构信息

Department of Biosciences and Bioengineering, Indian Institute of Technology Guwahati, Guwahati 781039, Assam, India.

Department of Pharmacology and Toxicology, National Institute of Pharmaceutical Education and Research, Guwahati 781006, Assam, India.

出版信息

Biosens Bioelectron. 2018 Oct 15;117:546-561. doi: 10.1016/j.bios.2018.06.039. Epub 2018 Jun 21.

Abstract

Biosensor designing took a giant leap in its path of evolution after its merger with a wing of nanotechnology. Dramatic properties like high surface area to volume ratio, enhanced chemical and optical properties of nanoscale materials have revolutionized sensor technology in terms of their analytical performance. Many metallic nanoparticles (MeNPs) like gold, silver, platinum, palladium nanoparticles, etc. have been tremendously exploited for improving sensor performance. Over the years, there has been slow but steady shift in nanoscience research with an aim to explore composite MeNPs like bimetallic, trimetallic nanoparticles, etc. So far, these engineered nanoparticles are shown to possess multifunctional properties which are providing several advantages over monometallic nanoparticles (mono-NPs). As a result of these properties, composite MeNPs, particularly bimetallic nanoparticles (BNPs), have sought the attention of sensor engineers and since then there has been rapid rise in the number of reports of sensors incorporating BNPs within a brief period of time. Keeping this pivotal fact in consideration, we have complied this review to give readers a clear insight in the possible ways BNPs can be synthesized that would render them to possess crucial characteristics desired for bio/chemical sensor fabrication and their applications. We have also discussed different characterization techniques that have been applied to investigate various properties of the BNPs along with a table that gives information on how each technique is different and in what ways they complement each other. Moreover, a comprehensive report on the incorporation of different BNPs in sensor fabrication for detection of hydrogen peroxide (HO), glucose, pesticides, nucleic acids, proteins, cancerous and bacterial cells has been described. The comparison of analytical performance of the biosensor design incorporating mono-NPs and BNPs, in terms of linear range (LR), limit of detection (LOD), sensitivity, and specificity, has also been discussed to show the importance of BNPs in sensing matrix.

摘要

生物传感器设计在与纳米技术融合后,在其发展道路上取得了巨大飞跃。纳米材料的高表面积与体积比、增强的化学和光学性质等显著特性,彻底改变了传感器技术在分析性能方面的状况。许多金属纳米粒子(MeNPs),如金、银、铂、钯纳米粒子等,已被大量用于提高传感器性能。多年来,纳米科学研究一直在缓慢而稳定地转变,旨在探索复合 MeNPs,如双金属、三金属纳米粒子等。到目前为止,这些工程纳米粒子已被证明具有多功能特性,这为其提供了优于单金属纳米粒子(mono-NPs)的几个优势。由于这些特性,复合 MeNPs,特别是双金属纳米粒子(BNPs),引起了传感器工程师的关注,此后,在很短的时间内,就有大量关于包含 BNPs 的传感器的报道。考虑到这一关键事实,我们编写了这篇综述,以便读者清楚地了解 BNPs 可能的合成方法,使它们具有生物/化学传感器制造所需的关键特性及其应用。我们还讨论了不同的表征技术,这些技术已被应用于研究 BNPs 的各种特性,以及一个表格,其中列出了每种技术的不同之处以及它们如何相互补充。此外,还全面描述了不同 BNPs 在传感器制造中用于检测过氧化氢(HO)、葡萄糖、农药、核酸、蛋白质、癌细胞和细菌细胞的应用。还讨论了将 mono-NPs 和 BNPs 纳入生物传感器设计的分析性能比较,包括线性范围(LR)、检测限(LOD)、灵敏度和特异性,以显示 BNPs 在传感矩阵中的重要性。

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