Eslami Sahand, Palomba Stefano
Center for Nano Science and Technology (CNST), Istituto Italiano di Tecnologia, Via Morego 30, 16163, Genoa, Italy.
Institute of Photonics and Optical Science (IPOS), The University of Sydney, Camperdown, NSW, 2006, Australia.
Nano Converg. 2021 Dec 3;8(1):41. doi: 10.1186/s40580-021-00290-7.
The demand for effective, real-time environmental monitoring and for customized point-of-care (PoC) health, requires the ability to detect low molecular concentrations, using portable, reliable and cost-effective devices. However, traditional techniques often require time consuming, highly technical and laborious sample preparations, as well as expensive, slow and bulky instrumentation that needs to be supervised by laboratory technicians. Consequently, fast, compact, self-sufficient, reusable and cost-effective lab-on-a-chip (LOC) devices, which can perform all the required tasks and can then upload the data to portable devices, would revolutionize any mobile sensing application by bringing the testing device to the field or to the patient. Integrated enhanced Raman scattering devices are the most promising platform to accomplish this vision and to become the basic architecture for future universal molecular sensors and hence an artificial optical nose. Here we are reviewing the latest theoretical and experimental work along this direction.
对有效的实时环境监测以及定制化即时医疗(PoC)健康监测的需求,要求具备使用便携式、可靠且经济高效的设备检测低分子浓度的能力。然而,传统技术通常需要耗时、高技术含量且费力的样品制备,以及昂贵、缓慢且笨重的仪器,还需要实验室技术人员进行操作。因此,快速、紧凑、自给自足、可重复使用且经济高效的芯片实验室(LOC)设备,能够执行所有所需任务,然后将数据上传到便携式设备,通过将测试设备带到现场或患者身边,将彻底改变任何移动传感应用。集成增强拉曼散射设备是实现这一愿景并成为未来通用分子传感器基本架构以及人造光学鼻的最有前途的平台。在此,我们回顾了沿此方向的最新理论和实验工作。