Lee Chang-Seuk, Kim Jong Seung, Kim Tae Hyun
Department of Chemistry, Soonchunhyang University Republic of Korea
Department of Chemistry, Korea University Republic of Korea
RSC Adv. 2019 Sep 9;9(49):28414-28420. doi: 10.1039/c9ra04656a.
We present a carbon nanotube-field effect transistor (CNT-FET) biosensor which first implements the chemodosimeter sensing principle in CNT nanoelectronics. We experimentally illustrate the specific molecular interplay that the cysteine-selective chemodosimeter immobilized on the CNT surface can specifically interact with cysteine, which leads to the chemical transformation of the chemodosimeter. Since the chemical transformation of the chemodosimeter can disrupt the charge distribution in the vicinity of the CNT surface, the carrier equilibrium in CNT might be altered, and manifested by the conductivity change of CNT-FET. The real-time conductance measurements show our biosensor is capable of label-free, rapid, highly selective and ultrasensitive detection of cysteine with a detection limit down to 0.45 fM. These results first verify the signaling principle competency of chemical transformation of the chemodosimeter in CNT electronic sensors. Combined with the advantages of the highly selective chemodosimeter and sensitive CNT-FET, the excellent performance of our sensor indicates its promising prospect as a valuable tool for developing highly sensitive and selective sensing platforms in practical application.
我们展示了一种碳纳米管场效应晶体管(CNT-FET)生物传感器,它首次在碳纳米管纳米电子学中实现了化学计量计传感原理。我们通过实验说明了固定在碳纳米管表面的半胱氨酸选择性化学计量计与半胱氨酸之间能够特异性相互作用的特定分子相互作用,这会导致化学计量计发生化学转化。由于化学计量计的化学转化会破坏碳纳米管表面附近的电荷分布,碳纳米管中的载流子平衡可能会改变,并通过CNT-FET的电导率变化表现出来。实时电导测量表明,我们的生物传感器能够对半胱氨酸进行无标记、快速、高选择性和超灵敏检测,检测限低至0.45 fM。这些结果首次验证了化学计量计在碳纳米管电子传感器中的化学转化信号原理的有效性。结合高选择性化学计量计和灵敏的CNT-FET的优点,我们传感器的优异性能表明其作为开发实际应用中高灵敏和选择性传感平台的有价值工具具有广阔前景。