University of Turku, Department of Future Technologies, FI-20014 Turun yliopisto, Finland.
Biosens Bioelectron. 2017 Dec 15;98:437-448. doi: 10.1016/j.bios.2017.07.010. Epub 2017 Jul 5.
The seminal importance of detecting ions and molecules for point-of-care tests has driven the search for more sensitive, specific, and robust sensors. Electronic detection holds promise for future miniaturized in-situ applications and can be integrated into existing electronic manufacturing processes and technology. The resulting small devices will be inherently well suited for multiplexed and parallel detection. In this review, different field-effect transistor (FET) structures and detection principles are discussed, including label-free and indirect detection mechanisms. The fundamental detection principle governing every potentiometric sensor is introduced, and different state-of-the-art FET sensor structures are reviewed. This is followed by an analysis of electrolyte interfaces and their influence on sensor operation. Finally, the fundamentals of different detection mechanisms are reviewed and some detection schemes are discussed. In the conclusion, current commercial efforts are briefly considered.
检测离子和分子对于即时检测的重要性不言而喻,这推动了人们对更灵敏、更特异和更稳健的传感器的研究。电子检测有望应用于未来的小型化现场检测,并能集成到现有的电子制造工艺和技术中。由此产生的小型器件将非常适合于多路复用和并行检测。在这篇综述中,我们讨论了不同的场效应晶体管(FET)结构和检测原理,包括无标记和间接检测机制。引入了每一个电位传感器的基本检测原理,并综述了不同的最先进的 FET 传感器结构。接下来分析了电解质界面及其对传感器操作的影响。最后,综述了不同检测机制的基本原理,并讨论了一些检测方案。在结论中,简要考虑了当前的商业努力。