Reconfigurable Magnetic Nanopore Platform for Selective Trapping

Fuente: arXiv
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Main Authors: Sanamreddy, Nageswar Reddy, Maunier, Jeanne, Veedu, Malavika Kayyil, Sapunova, Anastasiia, Maccaferri, Nicolò, Garoli, Denis, Wenger, Jérôme, Vavassori, Paolo
Format: Preprint
Published: 2026
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author Sanamreddy, Nageswar Reddy
Maunier, Jeanne
Veedu, Malavika Kayyil
Sapunova, Anastasiia
Maccaferri, Nicolò
Garoli, Denis
Wenger, Jérôme
Vavassori, Paolo
author_facet Sanamreddy, Nageswar Reddy
Maunier, Jeanne
Veedu, Malavika Kayyil
Sapunova, Anastasiia
Maccaferri, Nicolò
Garoli, Denis
Wenger, Jérôme
Vavassori, Paolo
contents Solid-state nanopores offer a powerful platform for nanoscale analysis of individual analytes, including biomolecules and functionalized nanoparticles, by confining them within a precisely defined sensing region. However, their inherently passive operation restricts practical applications, as they cannot precisely control particle position or dynamics inside the pore. Here, we introduce magnetic nanopore architectures that integrate a ferromagnetic layer into the nanopore system. Acting as a magnetic discontinuity within an otherwise uniformly magnetized film, the nanopore generates localized stray magnetic fields that enable magnetic tweezing of magnetic nanoparticles, which can be functionalized with fluorescent biomolecules. Importantly, the nanopore geometry is designed to reversibly switch between a nearly uniform magnetization state and a magnetic flux-closure state through the application of short magnetic field pulses of controlled amplitude. This capability allows the magnetic tweezing effect to be selectively activated or deactivated, enabling controlled capture and release of tagged biomolecules on demand. As a proof of concept, we demonstrate the selective magnetic trapping of fluorescent magnetic particles. These findings pave the way for reconfigurable, on-chip magnetic nanopore platforms capable of selective trapping and high-throughput single-particle detection. KEYWORDS: Nanopores, magnetic tweezers, fluorescence microscopy, vortex state, active control, magnetic nanoparticles
format Preprint
id arxiv_https___arxiv_org_abs_2605_08791
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Reconfigurable Magnetic Nanopore Platform for Selective Trapping
Sanamreddy, Nageswar Reddy
Maunier, Jeanne
Veedu, Malavika Kayyil
Sapunova, Anastasiia
Maccaferri, Nicolò
Garoli, Denis
Wenger, Jérôme
Vavassori, Paolo
Optics
Applied Physics
Solid-state nanopores offer a powerful platform for nanoscale analysis of individual analytes, including biomolecules and functionalized nanoparticles, by confining them within a precisely defined sensing region. However, their inherently passive operation restricts practical applications, as they cannot precisely control particle position or dynamics inside the pore. Here, we introduce magnetic nanopore architectures that integrate a ferromagnetic layer into the nanopore system. Acting as a magnetic discontinuity within an otherwise uniformly magnetized film, the nanopore generates localized stray magnetic fields that enable magnetic tweezing of magnetic nanoparticles, which can be functionalized with fluorescent biomolecules. Importantly, the nanopore geometry is designed to reversibly switch between a nearly uniform magnetization state and a magnetic flux-closure state through the application of short magnetic field pulses of controlled amplitude. This capability allows the magnetic tweezing effect to be selectively activated or deactivated, enabling controlled capture and release of tagged biomolecules on demand. As a proof of concept, we demonstrate the selective magnetic trapping of fluorescent magnetic particles. These findings pave the way for reconfigurable, on-chip magnetic nanopore platforms capable of selective trapping and high-throughput single-particle detection. KEYWORDS: Nanopores, magnetic tweezers, fluorescence microscopy, vortex state, active control, magnetic nanoparticles
title Reconfigurable Magnetic Nanopore Platform for Selective Trapping
topic Optics
Applied Physics
url https://arxiv.org/abs/2605.08791