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Polycrystallinity of Lithographically Fabricated Plasmonic Nanostructures Dominates Their Acoustic Vibrational Damping.
Yi, Chongyue; Su, Man-Nung; Dongare, Pratiksha D; Chakraborty, Debadi; Cai, Yi-Yu; Marolf, David M; Kress, Rachael N; Ostovar, Behnaz; Tauzin, Lawrence J; Wen, Fangfang; Chang, Wei-Shun; Jones, Matthew R; Sader, John E; Halas, Naomi J; Link, Stephan.
Afiliação
  • Yi C; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
  • Su MN; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
  • Dongare PD; Applied Physics Graduate Program , Rice University , Houston , Texas 77005 , United States.
  • Chakraborty D; Department of Electrical and Computer Engineering , Rice University , Houston , Texas 77005 , United States.
  • Cai YY; ARC Centre of Excellence in Exciton Science, School of Mathematics and Statistics , The University of Melbourne , Parkville , VIC 3010 , Australia.
  • Marolf DM; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
  • Kress RN; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
  • Ostovar B; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
  • Tauzin LJ; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
  • Wen F; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
  • Chang WS; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
  • Jones MR; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
  • Sader JE; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
  • Halas NJ; ARC Centre of Excellence in Exciton Science, School of Mathematics and Statistics , The University of Melbourne , Parkville , VIC 3010 , Australia.
  • Link S; Department of Chemistry , Rice University , Houston , Texas 77005 , United States.
Nano Lett ; 18(6): 3494-3501, 2018 06 13.
Article em En | MEDLINE | ID: mdl-29715035
ABSTRACT
The study of acoustic vibrations in nanoparticles provides unique and unparalleled insight into their mechanical properties. Electron-beam lithography of nanostructures allows precise manipulation of their acoustic vibration frequencies through control of nanoscale morphology. However, the dissipation of acoustic vibrations in this important class of nanostructures has not yet been examined. Here we report, using single-particle ultrafast transient extinction spectroscopy, the intrinsic damping dynamics in lithographically fabricated plasmonic nanostructures. We find that in stark contrast to chemically synthesized, monocrystalline nanoparticles, acoustic energy dissipation in lithographically fabricated nanostructures is solely dominated by intrinsic damping. A quality factor of Q = 11.3 ± 2.5 is observed for all 147 nanostructures, regardless of size, geometry, frequency, surface adhesion, and mode. This result indicates that the complex Young's modulus of this material is independent of frequency with its imaginary component being approximately 11 times smaller than its real part. Substrate-mediated acoustic vibration damping is strongly suppressed, despite strong binding between the glass substrate and Au nanostructures. We anticipate that these results, characterizing the optomechanical properties of lithographically fabricated metal nanostructures, will help inform their design for applications such as photoacoustic imaging agents, high-frequency resonators, and ultrafast optical switches.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Nano Lett Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Estados Unidos

Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Nano Lett Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Estados Unidos