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Continuous-wave upconverting nanoparticle microlasers.
Fernandez-Bravo, Angel; Yao, Kaiyuan; Barnard, Edward S; Borys, Nicholas J; Levy, Elizabeth S; Tian, Bining; Tajon, Cheryl A; Moretti, Luca; Altoe, M Virginia; Aloni, Shaul; Beketayev, Kenes; Scotognella, Francesco; Cohen, Bruce E; Chan, Emory M; Schuck, P James.
Afiliación
  • Fernandez-Bravo A; The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
  • Yao K; The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
  • Barnard ES; Department of Mechanical Engineering, UC Berkeley, Berkeley, CA, USA.
  • Borys NJ; The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
  • Levy ES; The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
  • Tian B; The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
  • Tajon CA; The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
  • Moretti L; The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
  • Altoe MV; Department of Physics, Politecnico di Milano, Milan, Italy.
  • Aloni S; The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
  • Beketayev K; The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.
  • Scotognella F; Computer Science Laboratory, National Laboratory Astana, Astana, Kazakhstan.
  • Cohen BE; Department of Physics, Politecnico di Milano, Milan, Italy.
  • Chan EM; Center for Nano Science and Technology@PoliMi, Istituto Italiano di Tecnologia, Milan, Italy.
  • Schuck PJ; The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, USA. becohen@lbl.gov.
Nat Nanotechnol ; 13(7): 572-577, 2018 07.
Article en En | MEDLINE | ID: mdl-29915271
ABSTRACT
Reducing the size of lasers to microscale dimensions enables new technologies1 that are specifically tailored for operation in confined spaces ranging from ultra-high-speed microprocessors2 to live brain tissue3. However, reduced cavity sizes increase optical losses and require greater input powers to reach lasing thresholds. Multiphoton-pumped lasers4-7 that have been miniaturized using nanomaterials such as lanthanide-doped upconverting nanoparticles (UCNPs)8 as lasing media require high pump intensities to achieve ultraviolet and visible emission and therefore operate under pulsed excitation schemes. Here, we make use of the recently described energy-looping excitation mechanism in Tm3+-doped UCNPs9 to achieve continuous-wave upconverted lasing action in stand-alone microcavities at excitation fluences as low as 14 kW cm-2. Continuous-wave lasing is uninterrupted, maximizing signal and enabling modulation of optical interactions10. By coupling energy-looping nanoparticles to whispering-gallery modes of polystyrene microspheres, we induce stable lasing for more than 5 h at blue and near-infrared wavelengths simultaneously. These microcavities are excited in the biologically transmissive second near-infrared (NIR-II) window and are small enough to be embedded in organisms, tissues or devices. The ability to produce continuous-wave lasing in microcavities immersed in blood serum highlights practical applications of these microscale lasers for sensing and illumination in complex biological environments.
Asunto(s)

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Tulio / Nanotecnología / Nanopartículas / Rayos Láser Límite: Animals Idioma: En Revista: Nat Nanotechnol Año: 2018 Tipo del documento: Article País de afiliación: Estados Unidos

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Tulio / Nanotecnología / Nanopartículas / Rayos Láser Límite: Animals Idioma: En Revista: Nat Nanotechnol Año: 2018 Tipo del documento: Article País de afiliación: Estados Unidos
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