4.7 Review

Biomimetic solid-state nanochannels for chemical and biological sensing applications

期刊

TRAC-TRENDS IN ANALYTICAL CHEMISTRY
卷 144, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.trac.2021.116425

关键词

Biosensing; Nanofluidics; Nanochannels; Solid-state nanopores; Molecular recognition

资金

  1. CONICET [PIP-0370]
  2. DAAD
  3. Universidad Nacional de La Plata [PPID-X867]
  4. ANPCyT [PICT-2017-1523, PICT2016-1680]
  5. LOEWE project iNAPO - Hessen State Ministry of Higher Education, Research and Arts
  6. CONICET
  7. GET_INvolved programme of GSI
  8. Universidad Nacional de La Plata

向作者/读者索取更多资源

This article describes recent advances in solid-state nanochannel-based (bio)chemical sensors, including sensing principles, nanofabrication techniques and strategies for detecting specific targets. These solid-state nanochannels exhibit customized sensing functions due to their unique ion transport properties and integration of molecular recognition elements, showing great potential for various applications.
Biomimetic solid-state nanochannels enable new modalities for biosensing. In the last decade, these nanofluidic architectures have been widely studied due to their rapid and sensitive detection capabilities. Developing nanofluidic sensors with great ability to sense ions, small biomolecules, and biological macromolecules requires the combination of versatile surface modification strategies with reliable nanofabrication techniques. Solid-state nanochannels display unique ion transport properties and appealing effects arise when their inner surfaces are charged and the confinement length scale is comparable to the range of the electrostatic interactions in solution. In this context, the integration of molecular recognition elements into the nanochannels yields novel nanofluidic elements with tailored sensoric functions. This review describes recent advances in solid-state nanochannel-based (bio)chemical sensors. The topics covered in this work include sensing principles, nanofabrication techniques and strategies adopted for detecting specific targets, such as ions, small molecules, proteins or nucleic acids, among others. The review highlights several exceptionally promising research directions and discusses how the interplay between the interface chemistry, governed by the bio-receptors, and the remarkable ion transport properties of nanochannels plays a critical role in the analytical performance of the developed devices. In the end, we also offer our vision of the future prospects of this field of research (c) 2021 Elsevier B.V. All rights reserved.

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