Chongqing Key Laboratory of Multi-scale Manufacturing Technology, Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Chongqing 400714, People's Republic of China.
Nanotechnology. 2017 Jan 27;28(4):045302. doi: 10.1088/1361-6528/28/4/045302. Epub 2016 Dec 16.
We report a scalable method to fabricate high-quality graphene nanopores for biomolecule detection using a helium ion microscope (HIM). HIM milling shows promising capabilities for precisely controlling the size and shape, and may allow for the potential production of nanopores at wafer scale. Nanopores could be fabricated at different sizes ranging from 5 to 30 nm in diameter in few minutes. Compared with the current solid-state nanopore fabrication techniques, e.g. transmission electron microscopy, HIM is fast. Furthermore, we investigated the exposure-time dependence of graphene nanopore formation: the rate of pore expansion did not follow a simple linear relationship with exposure time, but a fast expansion rate at short exposure time and a slow rate at long exposure time. In addition, we performed biomolecule detection with our patterned graphene nanopore. The ionic current signals induced by 20-base single-stranded DNA homopolymers could be used as a basis for homopolymer differentiation. However, the charge interaction of homopolymer chains with graphene nanopores, and the conformations of homopolymer chains need to be further considered to improve the accuracy of discrimination.
我们报告了一种使用氦离子显微镜 (HIM) 制造高质量石墨烯纳米孔以进行生物分子检测的可扩展方法。HIM 铣削具有精确控制尺寸和形状的有前途的能力,并且可能允许在晶圆级生产纳米孔。几分钟内即可在 5 至 30nm 直径的不同尺寸上制造纳米孔。与当前的固态纳米孔制造技术(例如透射电子显微镜)相比,HIM 速度更快。此外,我们研究了石墨烯纳米孔形成的曝光时间依赖性:孔扩张率与曝光时间没有遵循简单的线性关系,而是在短曝光时间内快速扩张,而在长曝光时间内缓慢扩张。此外,我们使用我们的图案化石墨烯纳米孔进行了生物分子检测。由 20 个碱基单链 DNA 均聚物引起的离子电流信号可用作均聚物区分的基础。然而,均聚物链与石墨烯纳米孔的电荷相互作用以及均聚物链的构象需要进一步考虑,以提高区分的准确性。