4.4 Article

Nanosecond nonlinear optical and optical limiting properties of hollow gold nanocages

Journal

APPLIED PHYSICS B-LASERS AND OPTICS
Volume 124, Issue 1, Pages -

Publisher

SPRINGER
DOI: 10.1007/s00340-017-6888-3

Keywords

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Funding

  1. National Natural Science Foundation of China [61108056]
  2. Major Projects of the University of Fujian Province [2015N5007]
  3. Youth Natural Fund Key Project of Fujian Province [JZ160462]

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Gold nanocages (NCs) were prepared using the galvanic replacement reaction. Transmission electron microscopy images confirmed the porous morphology and completely hollow interior of the gold NCs. The nanosecond nonlinear optical and optical limiting (OL) properties of the NCs were characterized using the open-aperture Z-scan technique with 8-ns laser pulses at 532 nm. The gold NCs exhibited intensity-dependent transformation from saturable absorption to reverse-saturable absorption. The nonlinear absorption coefficient and saturable energy of the NCs were 5 x 10(-12) m/W and 2.5 x 10(10) W/m(2), respectively. Meanwhile, the gold NCs were found to display strong OL properties towards nanosecond laser pulses. The OL threshold of the gold NCs was lower than that of solid gold nanoparticles and comparable with that of a carbon nanotube suspension. Input fluence and angle-dependent scattering measurements indicated that nonlinear scattering plays an important role in the OL behavior of the gold nanostructures at high laser excitation. The improved OL response in gold NCs was discussed from the viewpoint of structural characteristic. The ultrathin and highly porous walls of the gold NCs can effectively transfer the photon-induced heat to the surrounding solvent, resulting in enhanced OL properties compared with those of solid gold nanoparticles. The intensity-dependent transformation from saturable absorption to reverse-saturable absorption and excellent OL response indicate that the smart gold NCs with ultrathin and highly porous walls can be considered as potential candidate in pulse shaping, passive mode locking, and eye protection against powerful lasers.

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