Gated MoS2/SiN Nanochannel for Tunable Ion Transport and Protein Translocation

Fuente: arXiv
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Main Authors: Weng, Shukun, Douaki, Ali, Tsutsui, Makusu, Lanzavecchia, German, Sapunova, Anastasiia, Iannetti, Lorenzo, Giacomello, Alberto, Krahne, Roman, Garoli, Denis
Format: Preprint
Published: 2025
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author Weng, Shukun
Douaki, Ali
Tsutsui, Makusu
Lanzavecchia, German
Sapunova, Anastasiia
Iannetti, Lorenzo
Giacomello, Alberto
Krahne, Roman
Garoli, Denis
author_facet Weng, Shukun
Douaki, Ali
Tsutsui, Makusu
Lanzavecchia, German
Sapunova, Anastasiia
Iannetti, Lorenzo
Giacomello, Alberto
Krahne, Roman
Garoli, Denis
contents Ionic transport in nanofluidic channels holds great promise for applications such as single-molecule analysis, molecular manipulation, and energy harvesting. However, achieving precise control over ion transport remains a major challenge. In this work, we introduce a MoS2 SiN hybrid nanochannel architecture that enables electrical tuning of ionic transport via external gating, and we examine its potential for osmotic power generation and single molecule detection. To fabricate the channels, we employed a combined focused ion beam (FIB) milling and dry transfer method, producing sub 10 nm thick structures while preserving the structural integrity and electronic properties of MoS2, essential for reliable surface charge modulation. We first investigated how the gate voltage influences ionic conductance, finding evidence of gate dependent modulation of ion selectivity under different bias polarities. Next, by applying a salt concentration gradient across the nanochannels, we demonstrated the feasibility of this platform for osmotic energy harvesting. Finally, we tested the system for single molecule sensing, showing that linearized bovine serum albumin (BSA) produced translocation signals with notably long dwell times. Together, these results highlight gated MoS2 SiN nanochannels as a promising platform for tunable nanofluidics, with potential applications in controlled molecular transport and energy harvesting from osmotic gradients.
format Preprint
id arxiv_https___arxiv_org_abs_2508_19023
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Gated MoS2/SiN Nanochannel for Tunable Ion Transport and Protein Translocation
Weng, Shukun
Douaki, Ali
Tsutsui, Makusu
Lanzavecchia, German
Sapunova, Anastasiia
Iannetti, Lorenzo
Giacomello, Alberto
Krahne, Roman
Garoli, Denis
Applied Physics
Ionic transport in nanofluidic channels holds great promise for applications such as single-molecule analysis, molecular manipulation, and energy harvesting. However, achieving precise control over ion transport remains a major challenge. In this work, we introduce a MoS2 SiN hybrid nanochannel architecture that enables electrical tuning of ionic transport via external gating, and we examine its potential for osmotic power generation and single molecule detection. To fabricate the channels, we employed a combined focused ion beam (FIB) milling and dry transfer method, producing sub 10 nm thick structures while preserving the structural integrity and electronic properties of MoS2, essential for reliable surface charge modulation. We first investigated how the gate voltage influences ionic conductance, finding evidence of gate dependent modulation of ion selectivity under different bias polarities. Next, by applying a salt concentration gradient across the nanochannels, we demonstrated the feasibility of this platform for osmotic energy harvesting. Finally, we tested the system for single molecule sensing, showing that linearized bovine serum albumin (BSA) produced translocation signals with notably long dwell times. Together, these results highlight gated MoS2 SiN nanochannels as a promising platform for tunable nanofluidics, with potential applications in controlled molecular transport and energy harvesting from osmotic gradients.
title Gated MoS2/SiN Nanochannel for Tunable Ion Transport and Protein Translocation
topic Applied Physics
url https://arxiv.org/abs/2508.19023