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Photon-induced generation and spatial control of extreme pressure at the nanoscale with a gold bowtie nano-antenna platform

delete2016-01-01
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PRE
AI
C
Christos Boutopoulos
A
Adrien Dagallier
M
Maria Sansone
A
André-Pierre Blanchard-Dionne
É
Évelyne Lecavalier-Hurtubise
É
Étienne Boulais
M
Michel Meunier *
DOI:10.1039/c6nr03888cdelete
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Abstract

Abstract

En 中文
Precise spatial and temporal control of pressure stimulation at the nanometer scale is essential for the fabrication and manipulation of nano-objects, and for exploring single-molecule behaviour of matter under extreme conditions. However, state-of-the-art nano-mechanical transducers require sophisticated driving hardware and are currently limited to moderate pressure regimes. Here we report a gold plasmonic bowtie (AuBT) nano-antennas array that can generate extreme pressure stimulus of similar to 100 GPa in the ps (10-12 s) time scale with sub-wavelength resolution upon irradiation with ultra-short laser pulses. Our method leverages the non-linear interaction of photons with water molecules to excite a nano-plasma in the plasmon-enhanced near-field and induce extreme thermodynamic states. The proposed method utilizes laser pulses, which in contrast to micro-and nano-mechanical actuators offers simplicity and versatility. We present time-resolved shadowgraphic imaging, electron microscopy and simulation data that suggest that our platform can efficiently create cavitation nano-bubbles and generate intense pressure in specific patterns, which can be controlled by the selective excitation of plasmon modes of distinct polarizations. This novel platform should enable probing non-invasively the mechanical response of cells and single-molecules at time and pressure regimes that are currently difficult to reach with other methods.
Keywords:
FEMTOSECOND LASER
SILICON
DRIVEN
NANOCAVITATION
NANOABLATION
MANIPULATION
NANOSURGERY
MECHANISMS
SCATTERING
MOTORS
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Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Nanoscale cover
Nanoscale
IF:
5.1
Papers:
3.0W
Citations:
11.6W

Organization

U
universite de montreal
Scholars:
4.6W
Papers: 3.8W
Citations: 46