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Solution-processed nanographene distributed feedback lasers.
Bonal, Víctor; Muñoz-Mármol, Rafael; Gordillo Gámez, Fernando; Morales-Vidal, Marta; Villalvilla, José M; Boj, Pedro G; Quintana, José A; Gu, Yanwei; Wu, Jishan; Casado, Juan; Díaz-García, María A.
Afiliação
  • Bonal V; Departamento Física Aplicada and Instituto Universitario de Materiales de Alicante, Universidad de Alicante, 03080, Alicante, Spain.
  • Muñoz-Mármol R; Departamento Física Aplicada and Instituto Universitario de Materiales de Alicante, Universidad de Alicante, 03080, Alicante, Spain.
  • Gordillo Gámez F; Department of Physical Chemistry, University of Málaga, Andalucía Tech., Campus de Teatinos s/n, 29071, Malaga, Spain.
  • Morales-Vidal M; Departamento Física Aplicada and Instituto Universitario de Materiales de Alicante, Universidad de Alicante, 03080, Alicante, Spain.
  • Villalvilla JM; Departamento Física Aplicada and Instituto Universitario de Materiales de Alicante, Universidad de Alicante, 03080, Alicante, Spain.
  • Boj PG; Departamento Óptica, Farmacología y Anatomía and Instituto Universitario de Materiales de Alicante, Universidad de Alicante, 03080, Alicante, Spain.
  • Quintana JA; Departamento Óptica, Farmacología y Anatomía and Instituto Universitario de Materiales de Alicante, Universidad de Alicante, 03080, Alicante, Spain.
  • Gu Y; Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore, 117543, Singapore.
  • Wu J; Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore, 117543, Singapore. chmwuj@nus.edu.sg.
  • Casado J; Department of Physical Chemistry, University of Málaga, Andalucía Tech., Campus de Teatinos s/n, 29071, Malaga, Spain. casado@uma.es.
  • Díaz-García MA; Departamento Física Aplicada and Instituto Universitario de Materiales de Alicante, Universidad de Alicante, 03080, Alicante, Spain. maria.diaz@ua.es.
Nat Commun ; 10(1): 3327, 2019 Jul 25.
Article em En | MEDLINE | ID: mdl-31346182
The chemical synthesis of nanographene molecules constitutes the bottom-up approach toward graphene, simultaneously providing rational chemical design, structure-property control and exploitation of their semiconducting and luminescence properties. Here, we report nanographene-based lasers from three zigzag-edged polycyclic aromatics. The devices consist of a passive polymer film hosting the nanographenes and a top-layer polymeric distributed feedback resonator. Both the active material and the laser resonator are processed from solution, key for the purpose of obtaining low-cost devices with mechanical flexibility. The prepared lasers show narrow linewidth ( < 0.13 nm) emission at different spectral regions covering a large segment of the visible spectrum, and up to the vicinity of the near-infrared. They show outstandingly long operational lifetimes (above 105 pump pulses) and very low thresholds. These results represent a significant step forward in the field of graphene and broaden its versatility in low-cost devices implying light emission, such as lasers.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article