Silver nanowires

diam. × L 60 nm × 10 μm, 0.5% (isopropyl alcohol suspension)

Silver nanofibers, Silver nanowire, Silver nanowhiskers
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liquid (suspension)


0.5% (isopropyl alcohol suspension)

diám. × L

60 nm × 10 μm


0.785 g/mL at 25 °C

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InChI key


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Descripción general

Silver nanowires (AgNWs) are 1-D silver based nanostructures which have a diameter of 60 nm and a 10 μm length. They can be synthesized by the reduction of silver nitrate (AgNO3) in presence of silver bromide (AgBr). They may also be prepared by the arc discharge mechanism of immersed silver electrodes.


Silver nanowires are useful in a wide variety of conductive, optical and anti-microbial applications such as touchscreen displays, medical imaging and sterile clothing.
AgNWs have excellent electrical, optical and mechanical properties which make them a suitable material for flexible electronics based applications such as solar cells and film heaters.


25 mL in glass bottle

Palabra de señalización


Frases de peligro


Aquatic Acute 1 - Aquatic Chronic 1 - Eye Irrit. 2 - Flam. Liq. 2 - STOT SE 3

Órganos de actuación

Central nervous system


3 - Flammable liquids

WGK Alemania


Punto de inflamabilidad F

53.6 °F - closed cup

Punto de inflamabilidad C

12 °C - closed cup

Certificado de Análisis

Certificado de origen

Preparation of silver nanowires and their application in conducting polymer nanocomposites
Abbasi NM, et al.
Materials Chemistry and Physics, 166(5), 1-15 (2015)
Highly stretchable and sensitive strain sensor based on silver nanowire-elastomer nanocomposite
Amjadi M, et al.
ACS Nano, 8(5), 5154-5163 (2014)
Scalable coating and properties of transparent, flexible, silver nanowire electrodes
Hu L, et al.
ACS Nano, 4(5), 2955-2963 (2010)
Crystalline silver nanowires by soft solution processing
Sun Y, et al.
Nano Letters, 2(2), 165-168 (2002)
Silver nanowires: Synthesis technologies, growth mechanism and multifunctional applications
Zhang P, et al.
Materials Science and Engineering, B, 223(5), 1-23 (2017)
The ability to pattern conductive electrodes is technologically relevant for several applications, including photovolatics, displays, sensors, and biomedical devices.
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Silver nanomaterials have unique physical, chemical, and optical properties that are currently being leveraged for a wide variety of biological applications.
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In many technologies, performance requirements drive device dimensions below the scale of electron mean free paths (λe). This trend has increased scientific interest and technological importance of electrical resistivities at the nanoscale.
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Among various ceramics, one-dimensional (1-D) piezoelectric ceramics have attracted significant scientific attention for use in energy harvesting.
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