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Documentos Principais

357308

Sigma-Aldrich

Indium

foil, thickness 0.1 mm, ≥99.995% trace metals basis

Sinônimo(s):

Indium element

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About This Item

Fórmula empírica (Notação de Hill):
In
Número CAS:
Peso molecular:
114.82
Número CE:
Número MDL:
Código UNSPSC:
12141719
ID de substância PubChem:
NACRES:
NA.23

pressão de vapor

<0.01 mmHg ( 25 °C)

Nível de qualidade

Ensaio

≥99.995% trace metals basis

forma

foil

resistividade

8.37 μΩ-cm

espessura

0.1 mm

pf

156.6 °C (lit.)

densidade

7.3 g/mL at 25 °C (lit.)

cadeia de caracteres SMILES

[In]

InChI

1S/In

chave InChI

APFVFJFRJDLVQX-UHFFFAOYSA-N

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Descrição geral

Indium foil is widely used in nuclear facilities to capture thermal neutrons, because it shows a high cross section of neutron capture reaction. Hence, it may be used in dosemeters to measure exposure. Indium foils were studied for simultaneous monitoring neutron and photon intensities in a reactor core.

Aplicação

Wetting behaviour of eutectic gallium-indium alloys on bare indium foil was investigated.

Quantidade

1.8 g = 50 × 50 mm; 7.2 g = 100 × 100 mm

Pictogramas

Health hazard

Palavra indicadora

Danger

Frases de perigo

Declarações de precaução

Classificações de perigo

STOT RE 1 Inhalation

Órgãos-alvo

Lungs

Código de classe de armazenamento

6.1C - Combustible acute toxic Cat.3 / toxic compounds or compounds which causing chronic effects

Classe de risco de água (WGK)

WGK 1

Ponto de fulgor (°F)

Not applicable

Ponto de fulgor (°C)

Not applicable

Equipamento de proteção individual

dust mask type N95 (US), Eyeshields, Gloves


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Rebecca K Kramer et al.
Langmuir : the ACS journal of surfaces and colloids, 30(2), 533-539 (2013-12-24)
Liquid-embedded elastomer electronics have recently attracted much attention as key elements of highly deformable and "soft" electromechanical systems. Many of these fluid-elastomer composites utilize liquid metal alloys because of their high conductivities and inherent compliance. Understanding how these alloys interface
Activation detection using indium foils for simultaneous monitoring neutron and photon intensities in a reactor core.
Chao JH and Chiang AC
Radiation Measurements, 45, 1024-1033 (2010)
Recalibration of Indium foil for personnel screening in criticality accidents
Takada C, et al.
Radiation Protection Dosimetry, 144(1-4), 575-579 (2010)
G W Shu et al.
Physical chemistry chemical physics : PCCP, 15(10), 3618-3622 (2013-02-06)
Nonradiative energy transfer from an InGaN quantum well to Ag nanoparticles is unambiguously demonstrated by the time-resolved photoluminescence. The distance dependence of the energy transfer rate is found to be proportional to 1/d(3), in good agreement with the prediction of
Juan Zhou et al.
Chemical communications (Cambridge, England), 49(22), 2237-2239 (2013-02-12)
A reduced graphene oxide (RGO)-ZnIn(2)S(4) nanosheet composite was successfully synthesized via an in situ controlled growth process. The as-obtained RGO-ZnIn(2)S(4) composite showed excellent visible light H(2) production activity in the absence of noble metal cocatalysts.

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