纳米传感器
材料科学
石墨烯
适体
检出限
生物标志物
纳米技术
弯曲
基质(水族馆)
光电子学
复合材料
海洋学
化学
地质学
统计
生物
生物化学
遗传学
数学
作者
Ziran Wang,Zhuang Hao,Shifeng Yu,Carlos Gustavo De Moraes,Leejee H. Suh,Xuezeng Zhao,Qiao Lin
标识
DOI:10.1002/adfm.201905202
摘要
Abstract An ultraflexible and stretchable field‐effect transistor nanosensor is presented that uses aptamer‐functionalized monolayer graphene as the conducting channel. Specific binding of the aptamer with the target biomarker induces a change in the carrier concentration of the graphene, which is measured to determine the biomarker concentration. Based on a Mylar substrate that is only 2.5‐µm thick, the nanosensor is capable of conforming to underlying surfaces (e.g., those of human tissue or skin) that undergo large bending, twisting, and stretching deformations. In experimental testing, the device is rolled on cylindrical surfaces with radii down to 40 µm, twisted by angles ranging from −180° to 180°, or stretched by extensions up to 125%. With these large deformations applied either cyclically or non‐recurrently, the device is shown to incur no visible mechanical damage, maintain consistent electrical properties, and allow detection of TNF‐α, an inflammatory cytokine biomarker, with consistently high selectivity and low limit of detection (down to 5 × 10 −12 m ). The nanosensor can thus potentially enable consistent and reliable detection of liquid‐borne biomarkers on human skin or tissue surfaces that undergo large mechanical deformations.
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