Development of Scanning Ion-Conductance Microscopy Based Tip-Enhanced Raman Spectroscopy in Liquid Environments

The ability to conduct nanoscale imaging and in situ chemical analysis in liquid environments can greatly benefit biological and soft materials research. Scanning ion-conductance microscopy (SICM) is one of the most popular non-contact techniques for imaging and manipulating living cells and soft substrates in their native environments, using ionic current feedback to enable gentle and precise mapping. On the other hand, tip-enhanced Raman scattering (TERS) has achieved label-free, molecularly specific nanoscale characterization via plasmonic enhancement provided by the probe tip. Recent developments in both techniques have made it possible to combine SICM with TERS. The resulting hybrid SICM-TERS can enable simultaneous, correlated mapping of topography in liquid environments. This review provides an overview of SICM and TERS leading up to the development of SICM-TERS, including their respective principles, instrumental developments, and current state of the art. Additionally, it discusses how combining these two techniques enables new opportunities for real-time, minimally invasive investigations of dynamic biological processes and complex interfacial phenomena under native conditions. As probe durability and multimodal microscopy integration improve, SICM-TERS is expected to take a more versatile role in correlative nanoscale imaging in the future. This will have a major impact on nanomedicine, biology, and materials research.

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Publication Details

Journal
Nanotechnology
Published
2026-09-07
DOI
https://doi.org/10.1088/1361-6528/aea337
Primary Topic
Electrochemical Analysis and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Development of Scanning Ion-Conductance Microscopy Based Tip-Enhanced Raman Spectroscopy in Liquid Environments

Naihao Chiang, Abu Montakim Tareq, Richard Ifeanyichukwu Ikwugbado, Oluwaferanmi Isinkaye
Nanotechnology
Electrochemical Analysis and Applications
article

Development of Scanning Ion-Conductance Microscopy Based Tip-Enhanced Raman Spectroscopy in Liquid Environments

Naihao Chiang, Abu Montakim Tareq, Richard Ifeanyichukwu Ikwugbado, Oluwaferanmi Isinkaye
article en

Abstract

The ability to conduct nanoscale imaging and in situ chemical analysis in liquid environments can greatly benefit biological and soft materials research. Scanning ion-conductance microscopy (SICM) is one of the most popular non-contact techniques for imaging and manipulating living cells and soft substrates in their native environments, using ionic current feedback to enable gentle and precise mapping. On the other hand, tip-enhanced Raman scattering (TERS) has achieved label-free, molecularly specific nanoscale characterization via plasmonic enhancement provided by the probe tip. Recent developments in both techniques have made it possible to combine SICM with TERS. The resulting hybrid SICM-TERS can enable simultaneous, correlated mapping of topography in liquid environments. This review provides an overview of SICM and TERS leading up to the development of SICM-TERS, including their respective principles, instrumental developments, and current state of the art. Additionally, it discusses how combining these two techniques enables new opportunities for real-time, minimally invasive investigations of dynamic biological processes and complex interfacial phenomena under native conditions. As probe durability and multimodal microscopy integration improve, SICM-TERS is expected to take a more versatile role in correlative nanoscale imaging in the future. This will have a major impact on nanomedicine, biology, and materials research.

Nanotechnology
University of Houston (US)
National Science Foundation
Openalex Percentile: Top 26%
Electrochemical Analysis and Applications
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