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Merck
CN

747998

金纳米棒

10 nm diameter, silica coated, λmax, 808 nm, dispersion in H2O

别名:

Au纳米棒, 金纳米棒

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PubChem Substance ID:
UNSPSC Code:
12352302
MDL number:
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InChI

1S/Au

InChI key

PCHJSUWPFVWCPO-UHFFFAOYSA-N

material

silica

description

silca coating thickness 18-22 nm (TEM)

form

dispersion in H2O, nanorod

composition

Silica coated Gold nanorod

concentration

>30 μg/mL in H2O

diam. × L

9.5-11.5 nm × 40-50 nm

color

purple

diameter

10 nm

density

0.990 g/mL at 25 °C

λmax

808 nm

storage temp.

2-8°C

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Application

Our silica coated gold nanorods are highly stable and suitable for applications including; photothermal therapy; fluorescence enhancement; plasmonic arrays; and photoacoustic amplifiers.

Do Not Freeze

存储类别

12 - Non Combustible Liquids

wgk

nwg

flash_point_f

Not applicable

flash_point_c

Not applicable

法规信息

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Yun-Sheng Chen et al.
Nano letters, 11(2), 348-354 (2011-01-20)
Photoacoustic signal generation by metal nanoparticles relies on the efficient conversion of light to heat, its transfer to the environment, and the production of pressure transients. In this study we demonstrate that a dielectric shell has a strong influence on
Stéphanie Vial et al.
Langmuir : the ACS journal of surfaces and colloids, 23(8), 4606-4611 (2007-03-21)
A systematic study of the optical effects derived from plasmon coupling in mono- and multilayers of gold nanorods is presented. The monolayers were prepared using the standard polyelectrolyte-assisted layer-by-layer (LbL) method and gold nanorods coated with either poly(N-vinyl pyrrolidone) or
Liu; Si-Yun;
The Journal of Physical Chemistry C, 117(20), 10636-10642 (2013)
Sudipta Mallick et al.
Journal of nanoscience and nanotechnology, 13(5), 3223-3229 (2013-07-19)
Due to their efficient conversion of absorbed light energy to heat gold nanorods have been proved to be an amazing tool for minimally invasive photo-thermal cancer therapy. The present in vitro study demonstrates the ability of silica coated Au nanorods

商品

Gold nanoparticles find diverse applications from biomedical engineering to photovoltaics, leveraging their tunable optical properties for various fields.

Among various ceramics, one-dimensional (1-D) piezoelectric ceramics have attracted significant scientific attention for use in energy harvesting.

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