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Graphene nanoelectronic heterodyne sensor for rapid and sensitive vapour detection

机译:石墨烯纳米电子外差传感器,用于快速灵敏的蒸气检测

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摘要

Nearly all existing nanoelectronic sensors are based on charge detection, where molecular binding changes the charge density of the sensor and leads to sensing signal. However, intrinsically slow dynamics of interface-trapped charges and defect-mediated charge-transfer processes significantly limit those sensors' response to tens to hundreds of seconds, which has long been known as a bottleneck for studying the dynamics of molecule-nanomaterial interaction and for many applications requiring rapid and sensitive response. Here we report a fundamentally different sensing mechanism based on molecular dipole detection enabled by a pioneering graphene nanoelectronic heterodyne sensor. The dipole detection mechanism is confirmed by a plethora of experiments with vapour molecules of various dipole moments, particularly, with cis-and trans-isomers that have different polarities. Rapid (down to similar to 0.1 s) and sensitive (down to similar to 1 ppb) detection of a wide range of vapour analytes is achieved, representing orders of magnitude improvement over state-of-the-art nanoelectronics sensors.
机译:几乎所有现有的纳米电子传感器都基于电荷检测,其中分子结合会改变传感器的电荷密度并产生感应信号。但是,界面俘获电荷和缺陷介导的电荷转移过程固有的慢速动力学极大地将那些传感器的响应限制在数十秒至数百秒之间,长期以来,人们一直将其视为研究分子与纳米材料相互作用动力学的瓶颈。许多需要快速灵敏响应的应用程序。在这里,我们报告了一种基于分子偶极子检测的根本不同的传感机制,该分子偶极子检测由首创的石墨烯纳米电子外差传感器实现。偶极子检测机制已通过大量不同偶极矩蒸汽分子的实验得以证实,尤其是极性不同的顺式和反式异构体。快速(低至0.1 s左右)和灵敏(低至1 ppb左右)的检测方法可实现对多种蒸气分析物的快速检测,这比最先进的纳米电子传感器提高了几个数量级。

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