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A low-noise solid-state nanopore platform based on a highly insulating substrate.


ABSTRACT: A solid-state nanopore platform with a low noise level and sufficient sensitivity to discriminate single-strand DNA (ssDNA) homopolymers of poly-A40 and poly-T40 using ionic current blockade sensing is proposed and demonstrated. The key features of this platform are (a) highly insulating dielectric substrates that are used to mitigate the effect of parasitic capacitance elements, which decrease the ionic current RMS noise level to sub-10 pA and (b) ultra-thin silicon nitride membranes with a physical thickness of 5?nm (an effective thickness of 2.4?nm estimated from the ionic current) are used to maximize the signal-to-noise ratio and the spatial depth resolution. The utilization of an ultra-thin membrane and a nanopore diameter as small as 1.5?nm allow the successful discrimination of 40 nucleotide ssDNA poly-A40 and poly-T40. Overall, we demonstrate that this platform overcomes several critical limitations of solid-state nanopores and opens the door to a wide range of applications in single-molecule-based detection and analysis.

SUBMITTER: Lee MH 

PROVIDER: S-EPMC4264027 | biostudies-literature | 2014 Dec

REPOSITORIES: biostudies-literature

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A low-noise solid-state nanopore platform based on a highly insulating substrate.

Lee Min-Hyun MH   Kumar Ashvani A   Park Kyeong-Beom KB   Cho Seong-Yong SY   Kim Hyun-Mi HM   Lim Min-Cheol MC   Kim Young-Rok YR   Kim Ki-Bum KB  

Scientific reports 20141212


A solid-state nanopore platform with a low noise level and sufficient sensitivity to discriminate single-strand DNA (ssDNA) homopolymers of poly-A40 and poly-T40 using ionic current blockade sensing is proposed and demonstrated. The key features of this platform are (a) highly insulating dielectric substrates that are used to mitigate the effect of parasitic capacitance elements, which decrease the ionic current RMS noise level to sub-10 pA and (b) ultra-thin silicon nitride membranes with a phy  ...[more]

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