School of Electrical Engineering and Computer Sciences, Division of Electrical Engineering, KAIST, Daejeon 305-701, Republic of Korea.
Biosens Bioelectron. 2010 May 15;25(9):2182-5. doi: 10.1016/j.bios.2010.02.010. Epub 2010 Feb 23.
Gold nanoparticle (GN) embedded silicon nanowire (SiNW) configuration was proposed as a new biosensor for label-free DNA detection to enhance the sensitivity. The electric current flow between two terminals, a source and a drain electrode, were measured to sense the immobilization of probe oligonucleotides and their hybridization with target oligonucleotides. The complementary target oligonucleotide, breast cancer DNA with 1 pM, was sensed. In addition, its sensing mechanism and limit of detection (LOD) enhancement was investigated through simulation. The results support that the LOD can be improved by reducing the SiNW doping concentration. This emerging architecture combined nanostructure of spherical GN and SiNW has high potential as a label-free biosensor due to its facile fabrication process, high thermal stability, immobilization efficiency with a thiol-group in a self-assembled monolayer (SAM), and improved sensitivity.
金纳米粒子(GN)嵌入硅纳米线(SiNW)结构被提议作为一种新的无标记 DNA 检测生物传感器,以提高灵敏度。通过测量两个终端(源极和漏极)之间的电流流动来感测探针寡核苷酸的固定及其与靶标寡核苷酸的杂交。检测到互补的靶标寡核苷酸,即具有 1 pM 的乳腺癌 DNA。此外,还通过模拟研究了其传感机制和检测限(LOD)增强。结果表明,通过降低 SiNW 掺杂浓度可以提高 LOD。由于其制造工艺简单、热稳定性高、具有巯基的自组装单层(SAM)的固定效率以及提高的灵敏度,这种将球形 GN 和 SiNW 的纳米结构相结合的新兴架构具有作为无标记生物传感器的巨大潜力。