4.8 Article

Non-obstructive intracellular nanolasers

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NATURE COMMUNICATIONS
卷 9, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-018-07248-0

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资金

  1. European Research Council under the European Union's Horizon 2020 Framework Programme (FP/2014-2020)/ERC Grant [640012]
  2. EPSRC [EP/P030017/1, EP/L017008/1]
  3. RS Macdonald Charitable Trust
  4. EPSRC DTP [EP/M508214/1, EP/M506631/1]
  5. European Commission (Marie Sklodowska-Curie Individual Fellowship) [659213]
  6. Royal Society (Dorothy Hodgkin Fellowship) [DH160102]

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Molecular dyes, plasmonic nanoparticles and colloidal quantum dots are widely used in biomedical optics. Their operation is usually governed by spontaneous processes, which results in broad spectral features and limited signal-to-noise ratio, thus restricting opportunities for spectral multiplexing and sensing. Lasers provide the ultimate spectral definition and background suppression, and their integration with cells has recently been demonstrated. However, laser size and threshold remain problematic. Here, we report on the design, highthroughput fabrication and intracellular integration of semiconductor nanodisk lasers. By exploiting the large optical gain and high refractive index of GaInP/AlGaInP quantum wells, we obtain lasers with volumes 1000-fold smaller than the eukaryotic nucleus (V-laser < 0.1 mu m(3)), lasing thresholds 500-fold below the pulse energies typically used in twophoton microscopy (E-th approximate to 0.13 pJ), and excellent spectral stability (< 50 pm wavelength shift). Multiplexed labeling with these lasers allows cell-tracking through micro-pores, thus providing a powerful tool to study cell migration and cancer invasion.

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