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February 20, 2026Nature Communications4 citationsOpen Access

Chemistry-driven autonomous nanopore membranes

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MTMakusu TsutsuiWHWei‐Lun HsuDGDenis Garoli

Key Points

  • To address challenges in fabricating atomic-scale pores for studying ion transport and molecular dynamics.
  • Introduced a chemically controllable break-membrane approach for nanoscale pores in membranes.
  • Manipulated electrochemical reaction conditions via transmembrane voltage.
  • Conducted ionic current measurements to analyze pore conductance features.
  • Identified distinct conductance features related to ion dehydration and transport.
  • Demonstrated pore scalability allowing simultaneous actuation of multiple pores.
  • Proved the system's application potential in single-molecule sensing and neuromorphic computing.

Abstract

Fabrication of pores at the atomic scale remains a significant challenge in modern nanotechnology, hindering the study of ion transport and molecular dynamics in confined spaces. Here, we introduce a chemically controllable break-membrane approach that enables the repeated formation and closure of nanoscale pores in SiN x membranes through manipulating the in-pore electrochemical reaction conditions by transmembrane voltage. Ionic current measurements reveal distinct conductance features that are consistent with ion dehydration and transport through highly confined channels approaching sub-nanometer dimensions. The scalable nature of this platform, which allows multiple pores to be actuated simultaneously, offers a powerful tool for probing ion transport and fluid dynamics in extreme confinement. Beyond advancing fundamental understanding of ion transport and fluid dynamics, this chemically driven membrane system holds promise for applications in single-molecule sensing, neuromorphic computing, and nanoreactor design.

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Cite This Study

Tsutsui et al. (2026) studied this question.

synapsesocial.com/papers/6997b911baf9c852d8c25e59https://doi.org/10.1038/s41467-026-68800-x
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