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Pregled bibliografske jedinice broj: 1162889

Transverse Detection of DNA in MoS nanopores 1


Graf, Michael; Lihter, Martina; Liu, Ke; Sarathy, Aditya; Leburton, Jean-Pierre; Radenovic, Aleksandra
Transverse Detection of DNA in MoS nanopores 1 // From Basic to Life Sciences 9
Cavtat, Hrvatska, 2018. str. 48-48 (poster, međunarodna recenzija, sažetak, znanstveni)


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Naslov
Transverse Detection of DNA in MoS nanopores 1

Autori
Graf, Michael ; Lihter, Martina ; Liu, Ke ; Sarathy, Aditya ; Leburton, Jean-Pierre ; Radenovic, Aleksandra

Vrsta, podvrsta i kategorija rada
Sažeci sa skupova, sažetak, znanstveni

Izvornik
From Basic to Life Sciences 9 / - , 2018, 48-48

Skup
From Solid State to BioPhysics IX

Mjesto i datum
Cavtat, Hrvatska, 16.06.2018. - 23.06.2018

Vrsta sudjelovanja
Poster

Vrsta recenzije
Međunarodna recenzija

Ključne riječi
solid-state, nanopores, DNA detection, field-effect, transistor

Sažetak
Solid-state nanopores can be used for single-molecule detection and potentially provide a platform for rapid DNA sequencing. DNA molecules along with water and ions are electrophoretically driven through a small orifice in a membrane. The ionic current blockade is measured and provides information about the size and the length of the molecule. Typically, solid-state nanopores are fabricated in relatively thick material (20nm), thus not providing single-base resolution. Recently, monolayer materials such as MoS2 have proven very useful in detecting and differentiating single nucleotides. Compared to e.g. graphene, monolayer MoS2 is an intrinsic semiconductor with a bandgap of 1.8eV and can thus be used to fabricate a field effect transistor. Here we show that a nanopore in monolayer MoS can be integrated with a two-dimensional field-effect transistor. We report simultaneous and correlated detection of the ionic current trace and the transverse sheet current through suspended MoS2 during DNA translocation. Signal-to-noise ratios in the sheet current are superior to ionic current and seem to follow a different sensing principle. During translocation through the nanopore, the negative charge of DNA decreases the drain-source conductance of the n-type semiconductor, effectively gating the semiconductor. Such a device configuration might overcome resolution limitations due to the dominating access-resistance in ionic current through ultra-thin membranes. Furthermore, this technology provides a simple way of parallelization: An array of nanopores can be created on the same membrane without the need of fabricating individually addressable microfluidic chambers. The ionic voltage would then just act as the driving force of bringing the molecules to the field-effect transistor and all detection is done on the transistors. Further work is required in order to better understand the sensing principle and establish the resolution of these new devices.

Izvorni jezik
Engleski



POVEZANOST RADA


Profili:

Avatar Url Martina Lihter (autor)


Citiraj ovu publikaciju:

Graf, Michael; Lihter, Martina; Liu, Ke; Sarathy, Aditya; Leburton, Jean-Pierre; Radenovic, Aleksandra
Transverse Detection of DNA in MoS nanopores 1 // From Basic to Life Sciences 9
Cavtat, Hrvatska, 2018. str. 48-48 (poster, međunarodna recenzija, sažetak, znanstveni)
Graf, M., Lihter, M., Liu, K., Sarathy, A., Leburton, J. & Radenovic, A. (2018) Transverse Detection of DNA in MoS nanopores 1. U: From Basic to Life Sciences 9.
@article{article, author = {Graf, Michael and Lihter, Martina and Liu, Ke and Sarathy, Aditya and Leburton, Jean-Pierre and Radenovic, Aleksandra}, year = {2018}, pages = {48-48}, keywords = {solid-state, nanopores, DNA detection, field-effect, transistor}, title = {Transverse Detection of DNA in MoS nanopores 1}, keyword = {solid-state, nanopores, DNA detection, field-effect, transistor}, publisherplace = {Cavtat, Hrvatska} }
@article{article, author = {Graf, Michael and Lihter, Martina and Liu, Ke and Sarathy, Aditya and Leburton, Jean-Pierre and Radenovic, Aleksandra}, year = {2018}, pages = {48-48}, keywords = {solid-state, nanopores, DNA detection, field-effect, transistor}, title = {Transverse Detection of DNA in MoS nanopores 1}, keyword = {solid-state, nanopores, DNA detection, field-effect, transistor}, publisherplace = {Cavtat, Hrvatska} }




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