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Merck

310980

Sigma-Aldrich

Gold

wire, diam. 0.5 mm, 99.99% trace metals basis

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380 MG
CHF 311.00
1.9 G
CHF 1’370.00

CHF 311.00


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380 MG
CHF 311.00
1.9 G
CHF 1’370.00

About This Item

Empirische Formel (Hill-System):
Au
CAS-Nummer:
Molekulargewicht:
196.97
EG-Nummer:
MDL-Nummer:
UNSPSC-Code:
12141717
PubChem Substanz-ID:
NACRES:
NA.23

CHF 311.00


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Qualitätsniveau

Assay

99.99% trace metals basis

Form

wire

Widerstandsfähigkeit

2.05 μΩ-cm, 0°C

Durchmesser

0.5 mm

bp

2808 °C (lit.)

mp (Schmelzpunkt)

1063 °C (lit.)

Dichte

19.3 g/mL at 25 °C (lit.)

SMILES String

[Au]

InChI

1S/Au

InChIKey

PCHJSUWPFVWCPO-UHFFFAOYSA-N

Allgemeine Beschreibung

Gold (Au) is a yellow noble metal celebrated for its lustrous appearance and exceptional resistance to corrosion. Our high-purity gold is available in wire form with a diameter of 0.5 mm. Gold wires are widely utilized in the electronics and semiconductor industries for interconnecting integrated circuits, thanks to their outstanding conductivity and corrosion resistance. In the field of nanotechnology, gold wires are investigated for their unique properties, including cold welding and remarkable conducting capabilities, which make them ideal for nanoscale electronic applications. Additionally, gold-coated wires offer enhanced durability and oxidation resistance, making them suitable for demanding environments in aerospace and electronics. Overall, gold wires are integral to material science, particularly in advanced electronics and nanotechnology applications, even as research continues to explore cost-effective alternatives.

Menge

380 mg = 10 cm; 1.9 g = 50 cm

Lagerklassenschlüssel

11 - Combustible Solids

WGK

nwg

Flammpunkt (°F)

Not applicable

Flammpunkt (°C)

Not applicable

Persönliche Schutzausrüstung

Eyeshields, Gloves, type N95 (US)


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Young Joo Choi et al.
Journal of nanoscience and nanotechnology, 13(6), 4437-4445 (2013-07-19)
Gold nanorods (Au NRs) that absorb near-infrared (NIR) light have great potential in the field of nanomedicine. Photothermal therapy (PTT), a very attractive cancer therapy in nanomedicine, combines nanomaterials and light. The aim of this study was to elucidate the
Tae-Sik Cho et al.
Journal of nanoscience and nanotechnology, 13(5), 3711-3714 (2013-07-19)
The crystallization of Au/glass ultrathin films for surface plasmon resonance (SPR) biosensor has been studied using synchrotron X-ray scattering and field emission scanning electron microscope. In films thinner than 30 nm, crystallized Au grains with [111] preferred orientation were formed
Yoon-Chae Nah
Journal of nanoscience and nanotechnology, 13(5), 3470-3473 (2013-07-19)
Au nanoparticles and poly(3-hexylthiophene) (P3HT) composite films were prepared by electrodeposition of Au nanoparticles using pulse-current electrodeposition followed by the spin coating of P3HT and their enhanced electrochromic coloration was investigated. A relatively uniformed Au nanoparticle was obtained by the
Young Min Bae et al.
Journal of biomedical nanotechnology, 9(6), 1060-1064 (2013-07-19)
We report on the enhancement of sensitivity of SPR biosensor by modifying the metal surface. A mixture layer, in which gold and dielectric medium coexist, was simply prepared by increasing the roughness of gold surface deposited onto a glass substrate
Yanru Bu et al.
Journal of nanoscience and nanotechnology, 13(6), 4178-4182 (2013-07-19)
In this work, gold nanoparticles (Au NPs) were prepared by citrate reduction method, and the Surface-Enhanced Raman Scattering (SERS) intensities of these colloidal solutions with dopamine (DA) were compared at different hydrogen ion concentration (pH). The charged states of Au

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