...
首页> 外文期刊>ACS nano >Slowing DNA Translocation in a Nanofluidic Field-Effect Transistor
【24h】

Slowing DNA Translocation in a Nanofluidic Field-Effect Transistor

机译:纳米流体场效应晶体管中的慢速DNA易位。

获取原文
获取原文并翻译 | 示例
           

摘要

Here, we present an experimental demonstration of slowing DNA translocation across a nanochannel by modulating the channel surface charge through an externally applied gate bias. The experiments were performed on a nanofluidic field-effect transistor, which is a monolithic integrated platform featuring a 50 nmdiameter in-plane alumina nanocapillary whose entire length is surrounded by a gate electrode. The field-effect transistor behavior was validated on the gating of ionic conductance and protein transport. The gating of DNA translocation was subsequently studied by measuring discrete current dips associated with single lambda-DNA translocation events under a source-to-drain bias of 1 V. The translocation speeds under various gate bias conditions were extracted by fitting event histograms of the measured translocation time to the first passage time distributions obtained from a simple 1D biased diffusion model. A positive gate bias was observed to slow the translocation of single lambda-DNA chains markedly; the translocation speed was reduced by an order of magnitude from 18.4 mm/s obtained under a floating gate down to 1.33 mm/s under a positive gate bias of 9 V. Therefore, a dynamic and flexible regulation of the DNA translocation speed, which is vital for single-molecule sequencing, can be achieved on this device by simply tuning the gate bias. The device is realized in a conventional semiconductor microfabrication process without the requirement of advanced lithography, and can be potentially further developed into a compact electronic single-molecule sequencer.
机译:在这里,我们展示了通过外部施加的栅极偏压来调节通道表面电荷来减缓DNA在纳米通道上的移位的实验演示。实验是在纳米流体场效应晶体管上进行的,该晶体管是一个单片集成平台,具有一个直径为50 nm的面内氧化铝纳米毛细管,其全长被栅电极围绕。在离子电导和蛋白质转运的门控上验证了场效应晶体管的行为。随后通过测量与单个lambda-DNA易位事件相关的离散电流骤降来研究DNA易位的门控,该事件在1 V的源-漏偏置下进行。从简单的一维偏置扩散模型获得的到第一通过时间分布的易位时间。观察到正门偏压可显着减慢单个λ-DNA链的转运。移位速度从浮栅下的18.4 mm / s降低了一个数量级,下降到9 V的正栅偏压下的1.33 mm / s。因此,动态灵活地调节了DNA移位速度,即只需调整栅极偏置,就可以在该器件上实现单分子测序的关键。该装置可以通过常规的半导体微制造工艺实现,而无需先进的光刻技术,并且有可能进一步发展为紧凑的电子单分子定序器。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号