Nanophotonics & Plasmonics Laboratory, School of Basic Sciences, Indian Institute of Technology Bhubaneswar, India.
Nanophotonics & Plasmonics Laboratory, School of Basic Sciences, Indian Institute of Technology Bhubaneswar, India.
Biosens Bioelectron. 2019 Sep 15;141:111347. doi: 10.1016/j.bios.2019.111347. Epub 2019 May 31.
The molecular imprinting techniques with interferometric platform are promising for next-generation optical sensors for online and remote biosensing and device applications. This technique has shown a tremendous potential to provide a highly specific detection of target analyte/molecule with artificial complementary scaffolds in the polymeric nanostructures relay with tunable aspect ratio, low cost synthesis procedure and applicability in harsh environment. To date, no molecular imprinted nanoparticles has been integrated with optical microwire platform in the literature. Here, we report the synthesis of a molecularly imprinted nanocarrier using hydrothermal process that act as receptors and combines optical microwire as transducing support. The detailed sensing process for one of the widely used pesticides (parathion methyl) in the detection range of 10 to 10 M with hyper-sensitivity and detection limit of 1.30 × 10 nm/M and 79.43 fM respectively have been achieved. The compact sensing probe tested with real water samples collected from various sources show percentage recovery of around 100%. We strongly believe that the process for probe development will open a new gateway for next generation selective biosensing for biomedical research applications.
基于干涉平台的分子印迹技术有望成为下一代用于在线和远程生物传感和器件应用的光学传感器。该技术在提供具有人工互补支架的目标分析物/分子的高特异性检测方面显示出巨大的潜力,这些人工互补支架在聚合物纳米结构中继中具有可调纵横比、低成本合成程序和在恶劣环境中的适用性。迄今为止,文献中尚未将分子印迹纳米颗粒与光学微丝平台集成。在这里,我们报告了使用水热法合成的分子印迹纳米载体,该载体作为受体,并结合光学微丝作为转换支撑。已经实现了在 10 到 10 M 的检测范围内对一种广泛使用的农药(甲基对硫磷)进行超灵敏和检测限分别为 1.30×10 nm/M 和 79.43 fM 的检测。用从各种来源收集的实际水样测试的紧凑型传感探头显示回收率约为 100%。我们坚信,这种探针开发过程将为下一代用于生物医学研究应用的选择性生物传感开辟新的途径。