Center of Excellence for Green Nanotechnologies, Joint Centers of Excellence Program, King Abdulaziz City for Science and Technology , P.O Box 6086, Riyadh 11442, Saudi Arabia.
Department of Electrical and Computer Engineering, University of Jeddah , 285 Dhahban 23881, Saudi Arabia.
ACS Nano. 2018 Feb 27;12(2):1170-1178. doi: 10.1021/acsnano.7b06823. Epub 2018 Jan 17.
Nanoribbon- and nanowire-based field-effect transistor (FET) biosensors have stimulated a lot of interest. However, most FET biosensors were achieved by using bulky Ag/AgCl electrodes or metal wire gates, which have prevented the biosensors from becoming truly wearable. Here, we demonstrate highly sensitive and conformal InO nanoribbon FET biosensors with a fully integrated on-chip gold side gate, which have been laminated onto various surfaces, such as artificial arms and watches, and have enabled glucose detection in various body fluids, such as sweat and saliva. The shadow-mask-fabricated devices show good electrical performance with gate voltage applied using a gold side gate electrode and through an aqueous electrolyte. The resulting transistors show mobilities of ∼22 cm V s in 0.1× phosphate-buffered saline, a high on-off ratio (10), and good mechanical robustness. With the electrodes functionalized with glucose oxidase, chitosan, and single-walled carbon nanotubes, the glucose sensors show a very wide detection range spanning at least 5 orders of magnitude and a detection limit down to 10 nM. Therefore, our high-performance InO nanoribbon sensing platform has great potential to work as indispensable components for wearable healthcare electronics.
基于纳米带和纳米线的场效应晶体管 (FET) 生物传感器引起了广泛关注。然而,大多数 FET 生物传感器是通过使用体积庞大的 Ag/AgCl 电极或金属丝栅极来实现的,这使得生物传感器无法真正实现可穿戴。在这里,我们展示了具有完全集成的片上金侧栅极的高灵敏度和共形 InO 纳米带 FET 生物传感器,该传感器已被层压到各种表面上,例如人造手臂和手表,并能够在各种体液(如汗液和唾液)中进行葡萄糖检测。使用金侧栅极电极和水溶液电解质施加栅极电压的掩模制造的器件具有良好的电性能。所得晶体管在 0.1×磷酸盐缓冲盐水中的迁移率约为 22cm V s,开关比(10)高,机械鲁棒性好。通过将电极功能化葡萄糖氧化酶、壳聚糖和单壁碳纳米管,葡萄糖传感器具有非常宽的检测范围,跨越至少 5 个数量级,检测限低至 10nM。因此,我们的高性能 InO 纳米带传感平台具有成为可穿戴医疗电子产品不可或缺组件的巨大潜力。