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Merck

203874

Sigma-Aldrich

Nickel(II) nitrate hexahydrate

99.999% trace metals basis

Sinónimos:

Nickel dinitrate hexahydrate, Nickel nitrate hexahydrate, Nickel(2+) dinitrate hexahydrate, Nickelous nitrate hexahydrate

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About This Item

Fórmula lineal:
Ni(NO3)2 · 6H2O
Número de CAS:
Peso molecular:
290.79
Número CE:
Número MDL:
Código UNSPSC:
12352302
ID de la sustancia en PubChem:
NACRES:
NA.23
Ensayo:
99.999% trace metals basis
Formulario:
solid

Nivel de calidad

Ensayo

99.999% trace metals basis

Formulario

solid

impurezas

≤15.0 ppm Trace Metal Analysis

mp

56 °C (lit.)

densidad

2.05 g/mL at 25 °C (lit.)

aplicaciones

battery manufacturing

cadena SMILES

O.O.O.O.O.O.[Ni++].[O-][N+]([O-])=O.[O-][N+]([O-])=O

InChI

1S/2NO3.Ni.6H2O/c2*2-1(3)4;;;;;;;/h;;;6*1H2/q2*-1;+2;;;;;;

Clave InChI

AOPCKOPZYFFEDA-UHFFFAOYSA-N

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Descripción general

Nickel(II) nitrate hexahydrate, 99.999% trace metals basis is a highly pure (99.999%), with trace metal content ≤ 15.0 ppm. The product is designed for R&D applications of high-precision processes. It is suitable for use in a wide range of applications in catalysis, material science, electronics, electroplating, battery technology, chemical synthesis, analytical chemistry, and the production of pigments and coatings.

Aplicación

Nickel(II) nitrate hexahydrate, 99.999% trace metals basis can be used in the research areas to develop nickel-cadmium (NiCd) and nickel-metal hydride (NiMH) batteries. Nickel(II) nitrate hexahydrate is a precursor for nickel hydroxide, which is a key component of the electrodes of these batteries. Nickel(II) nitrate hexahydrate is used in electroplating processes to deposit a thin layer of nickel onto a substrate, providing corrosion resistance, enhanced appearance, and improved mechanical properties. Nickel(II) nitrate hexahydrate is employed in the preparation of nickel oxide (NiO) nanoparticles and other nickel-based nanomaterials. These materials have applications in energy storage, sensors, and catalysis. Nickel(II) nitrate hexahydrate is commonly used as a precursor in the synthesis of nickel-based catalysts. These catalysts are utilized in various chemical reactions, including hydrogenation, oxidation, and reforming processes in the petrochemical industry.

In addition, it can be used:


  • As an additive in the fabrication of cellulose acetate polymers(CA) to control the porosity of the polymer. The formation of Ni(NO3)2.6H2O aggregates in the polymer matrix during solidification and the strong interaction between Ni, nitrate, and water molecules results in the formation of well-defined pores on the surface of the CA matrix.
  • As a starting material to prepare nickel(ii) Schiff base, which is used as a precursor to synthesize NiO nanoparticles by solid-state thermal decomposition method.
  • As a dopant to prepare Ni-Ceria catalyst for selective hydrogenation of acetylene.
  • As a catalyst to prepare 3,4-dihydropyrimidinone derivatives via Biginelli cyclocondensation.

Características y beneficios

  • Exceptional Purity: The 99.999% purity of Nickel(II) nitrate hexahydrate minimizes contamination from trace metals, ensuring suitability for applications sensitive to even minute impurities.
  • Consistent Performance: Ultra-high purity guarantees consistent performance across various applications, reducing variability and enhancing reliability.
  • High Purity Standard: Ideal as a standard or reagent for trace metal analysis and high-precision analytical techniques, ensuring accurate and reliable results.

Palabra de señalización

Danger

Clasificaciones de peligro

Acute Tox. 4 Inhalation - Acute Tox. 4 Oral - Aquatic Acute 1 - Aquatic Chronic 1 - Carc. 1A - Eye Dam. 1 - Muta. 2 - Ox. Sol. 2 - Repr. 1B - Resp. Sens. 1 - Skin Irrit. 2 - Skin Sens. 1 - STOT RE 1 Inhalation

Código de clase de almacenamiento

5.1B - Oxidizing hazardous materials

Clase de riesgo para el agua (WGK)

WGK 3

Punto de inflamabilidad (°F)

Not applicable

Punto de inflamabilidad (°C)

Not applicable

Equipo de protección personal

Eyeshields, Faceshields, Gloves, type P3 (EN 143) respirator cartridges


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Doron Levin et al.
Inorganic chemistry, 35(14), 4191-4197 (1996-07-03)
A layered ammonium nickel molybdate was prepared by precipitation from a solution of nickel nitrate and ammonium heptamolybdate. The compound obtained, (NH(4))HNi(2)(OH)(2)(MoO(4))(2), is trigonal with hexagonal unit cell parameters a = 6.0147(4) Å, c = 21.8812(13) Å, and Z =
H Tanojo et al.
Acta dermato-venereologica. Supplementum, (212)(212), 19-23 (2002-01-23)
Allergic contact dermatitis due to nickel salts is common. It is therefore important to measure the permeation of these salts through the stratum corneum (SC), the primary rate-limiting domain in skin. An advanced diffusion system and analytical techniques now enable
J-C Amiard et al.
Comparative biochemistry and physiology. Toxicology & pharmacology : CBP, 147(3), 378-385 (2008-02-16)
In mussels impacted by the V- and Ni-rich oil dispersed in the environment after the < Erika > wreck, a significant and positive correlation was observed between metallothionein (MT) and V concentrations whereas no correlation was observed between MT and
Marisa Freitas et al.
Biometals : an international journal on the role of metal ions in biology, biochemistry, and medicine, 26(1), 13-21 (2012-10-26)
Nickel is an ubiquitous transition metal that is industrially applied in many forms, which inevitably leads to a high degree of occupational and environmental exposure. Over-exposure to nickel can produce a variety of adverse effects on human health, including allergy
B Vikhoff et al.
Acta radiologica (Stockholm, Sweden : 1987), 36(3), 323-325 (1995-05-01)
An investigation regarding possible artefacts from dental filling materials in MR imaging is presented including 9 types of such materials from various manufacturers. Freshly extracted teeth were prepared and the filling materials were handled according to manufacturers' instructions. The teeth

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Nickel complexes catalyze various synthetic reactions like oxidative addition, C-H activation, and cross-coupling.

Nickel complexes catalyze various synthetic reactions like oxidative addition, C-H activation, and cross-coupling.

Nickel complexes catalyze various synthetic reactions like oxidative addition, C-H activation, and cross-coupling.

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