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review article

Nanophotonic biosensors harnessing van der Waals materials

Oh, Sang-Hyun
•
Altug, Hatice  
•
Jin, Xiaojia
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June 22, 2021
Nature Communications

Low-dimensional van der Waals (vdW) materials can harness tightly confined polaritonic waves to deliver unique advantages for nanophotonic biosensing. The reduced dimensionality of vdW materials, as in the case of two-dimensional graphene, can greatly enhance plasmonic field confinement, boosting sensitivity and efficiency compared to conventional nanophotonic devices that rely on surface plasmon resonance in metallic films. Furthermore, the reduction of dielectric screening in vdW materials enables electrostatic tunability of different polariton modes, including plasmons, excitons, and phonons. One-dimensional vdW materials, particularly single-walled carbon nanotubes, possess unique form factors with confined excitons to enable single-molecule detection as well as in vivo biosensing. We discuss basic sensing principles based on vdW materials, followed by technological challenges such as surface chemistry, integration, and toxicity. Finally, we highlight progress in harnessing vdW materials to demonstrate new sensing functionalities that are difficult to perform with conventional metal/dielectric sensors. This review presents an overview of scenarios where van der Waals (vdW) materials provide unique advantages for nanophotonic biosensing applications. The authors discuss basic sensing principles based on vdW materials, advantages of the reduced dimensionality as well as technological challenges.

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Type
review article
DOI
10.1038/s41467-021-23564-4
Web of Science ID

WOS:000669043000003

Author(s)
Oh, Sang-Hyun
Altug, Hatice  
Jin, Xiaojia
Low, Tony
Koester, Steven J.
Ivanov, Aleksandar P.
Edel, Joshua B.
Avouris, Phaedon
Strano, Michael S.
Date Issued

2021-06-22

Publisher

Nature Research

Published in
Nature Communications
Volume

12

Issue

1

Article Number

3824

Subjects

Multidisciplinary Sciences

•

Science & Technology - Other Topics

•

surface-plasmon resonance

•

walled carbon nanotubes

•

phase molecular recognition

•

lipid-bilayer formation

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label-free

•

graphene plasmonics

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real-time

•

sensor

•

field

•

spectroscopy

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
BIOS  
Available on Infoscience
July 17, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/180091
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