Minimal-footprint photonic crystal nanolasers for biointegration

Fuente: arXiv
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Main Authors: Thomson, Catriona A., Stühler, Andreas, Pathak, Nachiket, Dzikevich, Valeryia, Schubert, Marcel
Format: Preprint
Published: 2026
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author Thomson, Catriona A.
Stühler, Andreas
Pathak, Nachiket
Dzikevich, Valeryia
Schubert, Marcel
author_facet Thomson, Catriona A.
Stühler, Andreas
Pathak, Nachiket
Dzikevich, Valeryia
Schubert, Marcel
contents Photonic crystals allow unprecedented control over how light is confined, propagates, and interacts with matter. Their development has had a transformative impact on optics and physics, and they remain the central platform for both fundamental discoveries and practical photonic technologies. However, the relatively large footprint and substrate-bound nature of photonic crystal structures have so far strongly limited their use as miniature optical devices or biointegrated sensors. Here, we overcome these limitations by identifying the minimal size of a 2D photonic crystal array needed to achieve lasing and describe the fabrication of substrate-less hexagonal laser particles with an active area as small as 30 μm2. Massively parallel fabrication, robust detachment, and integration of the nanolaser particles into live cells is demonstrated. Crucially, by engineering spatial and spectral mode characteristics, we designed NIR-II probes with mode volumes on the order of tens of attolitres, an order of magnitude smaller than whispering gallery probes of similar dimensions. Such high light localization is comparable in scale to different organelles of eucaryotic cells. In the future, we expect that chemical or plasmonic functionalization of the device will enable label-free sensing of nanoscale intracellular processes, and that it shall serve as a miniature platform to exploit developments in optical and quantum sensing for chemical and biological applications.
format Preprint
id arxiv_https___arxiv_org_abs_2601_12561
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Minimal-footprint photonic crystal nanolasers for biointegration
Thomson, Catriona A.
Stühler, Andreas
Pathak, Nachiket
Dzikevich, Valeryia
Schubert, Marcel
Optics
Photonic crystals allow unprecedented control over how light is confined, propagates, and interacts with matter. Their development has had a transformative impact on optics and physics, and they remain the central platform for both fundamental discoveries and practical photonic technologies. However, the relatively large footprint and substrate-bound nature of photonic crystal structures have so far strongly limited their use as miniature optical devices or biointegrated sensors. Here, we overcome these limitations by identifying the minimal size of a 2D photonic crystal array needed to achieve lasing and describe the fabrication of substrate-less hexagonal laser particles with an active area as small as 30 μm2. Massively parallel fabrication, robust detachment, and integration of the nanolaser particles into live cells is demonstrated. Crucially, by engineering spatial and spectral mode characteristics, we designed NIR-II probes with mode volumes on the order of tens of attolitres, an order of magnitude smaller than whispering gallery probes of similar dimensions. Such high light localization is comparable in scale to different organelles of eucaryotic cells. In the future, we expect that chemical or plasmonic functionalization of the device will enable label-free sensing of nanoscale intracellular processes, and that it shall serve as a miniature platform to exploit developments in optical and quantum sensing for chemical and biological applications.
title Minimal-footprint photonic crystal nanolasers for biointegration
topic Optics
url https://arxiv.org/abs/2601.12561