4.8 Article

Two Detection Modes of Nanoslit Sensing Based on Planar Heterostructure of Graphene/Hexagonal Boron Nitride

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ACS NANO
卷 -, 期 -, 页码 -

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AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c05002

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nanopore sensing; planar heterostructure; molecular manipulation; ionic current; molecular dynamics simulations

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Solid-state nanopore sequencing faces problems of pore clogging and fast speed, and this study proposes nanoslit sensing based on the planar heterostructure of graphene and hexagonal boron nitride. Molecular dynamics simulations show that DNA molecules are confined within the heterostructure and can permeate through nanoslits in two ways. This study sheds light on the sensing mechanism and provides theoretical guidance on designing devices controlling molecular transportation.
Solid-state nanopore sequencing is now confronted with problems of stochastic pore clogging and too fast speed during the DNA permeation through a nanopore, although this technique is revolutionary with long readability and high efficiency. These two problems are related to controlling molecular transportation during sequencing. To control the DNA motion and identify the four bases, we propose nanoslit sensing based on the planar heterostructure of two-dimensional graphene and hexagonal boron nitride. Molecular dynamics simulations are performed on investigating the motion of DNA molecules on the heterostructure with a nanoslit sensor. Results show that the DNA molecules are confined within the hexagonal boron nitride (HBN) domain of the heterostructure. And the confinement effects of the heterostructure can be optimized by tailoring the stripe length. Besides, there are two ways of DNA permeation through nanoslits: the DNA can cross or translocate the nanoslit under applied voltages along they and z directions. The two detection modes are named cross-slit and trans-slit, respectively. In both modes, the ionic current drops can be observed when the nanoslit is occupied by the DNA. And the ionic currents and dwell times can be simultaneously detected to identify the four different DNA bases. This study can shed light on the sensing mechanism based on the nanoslit sensor of a planar heterostructure and provide theoretical guidance on designing devices controlling molecular transportation during nanopore sequencing.

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