Lee Jieun, Jang Jaeman, Choi Bongsik, Yoon Jinsu, Kim Jee-Yeon, Choi Yang-Kyu, Kim Dong Myong, Kim Dae Hwan, Choi Sung-Jin
1] School of Electrical Engineering, Kookmin University, Seoul 136-702, Republic of Korea [2] Department of Electrical Engineering, Yale University, New Haven, Connecticut 06511, United States.
School of Electrical Engineering, Kookmin University, Seoul 136-702, Republic of Korea.
Sci Rep. 2015 Jul 21;5:12286. doi: 10.1038/srep12286.
This study demonstrates a hybrid biosensor comprised of a silicon nanowire (SiNW) integrated with an amplifier MOSFET to improve the current response of field-effect-transistor (FET)-based biosensors. The hybrid biosensor is fabricated using conventional CMOS technology, which has the potential advantage of high density and low noise performance. The biosensor shows a current response of 5.74 decades per pH for pH detection, which is 2.5 × 10(5) times larger than that of a single SiNW sensor. In addition, we demonstrate charged polymer detection using the biosensor, with a high current change of 4.5 × 10(5) with a 500 nM concentration of poly(allylamine hydrochloride). In addition, we demonstrate a wide dynamic range can be obtained by adjusting the liquid gate voltage. We expect that this biosensor will be advantageous and practical for biosensor applications which requires lower noise, high speed, and high density.
本研究展示了一种混合生物传感器,它由集成有放大器MOSFET的硅纳米线(SiNW)组成,以改善基于场效应晶体管(FET)的生物传感器的电流响应。该混合生物传感器采用传统的CMOS技术制造,具有高密度和低噪声性能的潜在优势。该生物传感器在pH检测中显示出每pH值5.74个数量级的电流响应,比单个SiNW传感器大2.5×10⁵倍。此外,我们展示了使用该生物传感器检测带电聚合物,在500 nM浓度的聚(烯丙胺盐酸盐)下,电流变化高达4.5×10⁵。此外,我们证明通过调节液体栅极电压可以获得宽动态范围。我们预计这种生物传感器对于需要低噪声、高速和高密度的生物传感器应用将是有利且实用的。