Malini S, Roy Arpita, Raj Kalyan, Raju K S Anantha, Ali Ismat H, Mahesh B, Yadav Krishna Kumar, Islam Saiful, Jeon Byong-Hun, Lee Sean Seungwon
Department of Chemistry, B.M.S. College of Engineering, Bangalore 560019, India.
Department of Biotechnology, School of Engineering & Technology, Sharda University, Greater Noida 201310, India.
Polymers (Basel). 2022 Feb 3;14(3):601. doi: 10.3390/polym14030601.
Nano-enabled sensing is an expanding interdisciplinary field of emerging science with dynamic multifunctional detecting capabilities, equipped with a wide range of multi-faceted nanomaterial having diverse dimensions and composition. They have proven to be highly robust, sensitive, and useful diagnostic tools ranging from advanced industrial processes to ordinary consumer products. As no single nanomaterial has proved to be unparalleled, recent years has witnessed a large number of nanomaterial-based sensing strategies for rapid detection and quantification of processes and substances with a high degree of reliability. Nano-furnished platforms, because of easy fabrication methods and chemical versatility, can serve as ideal sensing means through different transduction mechanisms. This article, through a unified experimental-theoretical approach, uses literature of recent years to introduce, evaluate, and analyze significant developments in the area of nanotechnology-aided sensors incorporating the various classes of nanomaterial. Addressing the broad interests, the work also summarizes the sensing mechanisms using schematic illustrations, attempts to integrate the performance of different categories of nanomaterials in the design of sensors, knowledge gaps, regulatory aspects, future research directions, and challenges of implementing such techniques in standalone devices. In view of a dependency of analysis and testing on sustained growth of sensor-supported platforms, this article inspires the scientific community for more attention in this field.
纳米传感是一个不断发展的新兴跨学科领域,具有动态多功能检测能力,配备了各种具有不同尺寸和组成的多面纳米材料。从先进的工业过程到普通消费品,它们已被证明是高度可靠、灵敏且有用的诊断工具。由于没有一种纳米材料被证明是无与伦比的,近年来出现了大量基于纳米材料的传感策略,用于对过程和物质进行快速检测和定量,且具有高度的可靠性。配备纳米材料的平台,由于其简便的制造方法和化学多功能性,可以通过不同的转导机制作为理想的传感手段。本文通过统一的实验 - 理论方法,利用近年来的文献来介绍、评估和分析纳米技术辅助传感器领域的重大进展,这些传感器包含各类纳米材料。为满足广泛的兴趣,该工作还使用示意图总结了传感机制,试图在传感器设计中整合不同类别纳米材料的性能、知识差距、监管方面、未来研究方向以及在独立设备中实施此类技术的挑战。鉴于分析和测试对传感器支持平台持续发展的依赖性,本文激励科学界更多地关注这一领域。