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品質水準
アッセイ
(iodometric, redox titration)
≥99.9% trace metals basis
形状
(Crystal or Powder)
溶解性
water: soluble
微量陰イオン
chloride (Cl-): ≤20 ppm
sulfate (SO42-): ≤50 ppm
微量陽イオン
Al: ≤10 ppm
Ca: ≤10 ppm
Cd: ≤10 ppm
Cr: ≤10 ppm
Fe: ≤10 ppm
K: ≤10 ppm
Mg: ≤10 ppm
Mn: ≤10 ppm
Na: ≤30 ppm
Ni: ≤10 ppm
Pb: ≤10 ppm
Si: ≤10 ppm
Zn: ≤10 ppm
詳細
Copper(II) nitrate trihydrate is a crystalline compound with high solubility in water. It serves as an excellent precursor for the synthesis of high-purity compounds, nanomaterials, and catalysts.
アプリケーション
Metal-organic frameworks (MOFs) have found applications in various fields such as gas storage, separations, sensors, catalysis, fuel cells, solar cells, nanotechnology devices, and drug delivery. Through a modular assembly strategy, a highly crystalline thin film of Cu-TCPP MOF was synthesized using Copper(II) nitrate trihydrate and the linker TCPP. This specific MOF holds significant promise due to its well-defined structure and potential for diverse applications. -Copper oxide nanoparticles of varying sizes were synthesized through a hydrothermal method using different concentrations of Copper(II) nitrate trihydrate. The pH of the solution was adjusted by adding NaOH or HNO3. This versatile approach allowed for the controlled synthesis of copper oxide nanoparticles with different sizes. - Mesoporous CuCo2O4 nanowires were synthesized as electrode materials for supercapacitors using Copper(II) nitrate trihydrate and Cobalt(II) nitrate hexahydrate using hydrothermal method. The synthesis involved nanocasting from a silica SBA-15 template. These electrode materials exhibited a capacitance of 1210 F g–1 at a current density of 2 A g–1, which significantly increased upon cycling to exceed 3000 F g–1. - A hybrid electrode comprising CuO and Cu2O micronanoparticles within a graphitized porous carbon matrix was synthesized using Copper(II) nitrate trihydrate via a one-step thermal transformation process. This hybrid electrode exhibited remarkable performance when employed as a negative electrode in lithium-ion and sodium-ion batteries, achieving capacities of 887.3 mAh g–1 at 60 mA g–1 and 302.9 mAh g–1 at 50 mA g–1 after 200 cycles, respectively. In addition,Copper(II) nitrate trihydrate serves as a suitable precursor for synthesizing copper catalysts for various applications. -Copper ferrite catalysts were synthesized using a co-precipitation method with the salt precursors Copper(II) nitrate trihydrate and Fe(NO3)3·9H2O. These catalysts exhibited heightened activity in the water-gas shift reaction. The improved catalytic performance can be attributed to factors such as enhanced Cu dispersion, a higher quantity of surface copper atoms, the presence of weak basic sites, and a strong interaction between copper and iron oxides, all resulting from the formation of copper ferrite.
シグナルワード
Danger
危険有害性情報
危険有害性の分類
Aquatic Acute 1 - Aquatic Chronic 2 - Eye Dam. 1 - Ox. Sol. 2 - Skin Corr. 1B
保管分類コード
5.1B - Oxidizing hazardous materials
WGK
WGK 3
引火点(°F)
Not applicable
引火点(℃)
Not applicable
適用法令
試験研究用途を考慮した関連法令を主に挙げております。化学物質以外については、一部の情報のみ提供しています。 製品を安全かつ合法的に使用することは、使用者の義務です。最新情報により修正される場合があります。WEBの反映には時間を要することがあるため、適宜SDSをご参照ください。
毒物及び劇物取締法
劇物
Jan Code
940143-250G:
940143-BULK:
940143-VAR:
最新バージョンのいずれかを選択してください:
Highly Ordered Mesoporous CuCo2O4 Nanowires, a Promising Solution for High-Performance Supercapacitors
Chemistry of Materials, 27(11), 3919?3926-3919?3926 (2015)
One-Step Catalytic Synthesis of CuO/Cu2O in a Graphitized Porous C Matrix Derived from the Cu-Based Metal?Organic Framework for Li- and Na-Ion Batteries
ACS Applied Materials & Interfaces, 8(30), 19514?19523-19514?19523 (2016)
Hydrothermal Synthesis of CuO Nanoparticles: Study on Effects of Operational Conditions on Yield, Purity, and Size of the Nanoparticles
Industrial & Engineering Chemistry Research, 50(6), 3540?3554-3540?3554 (2011)
Facile ?Modular Assembly? for Fast Construction of a Highly Oriented Crystalline MOF Nanofilm
Journal of the American Chemical Society, 134(40), 16524?16527-16524?16527 (2012)
Characterization and catalytic performance of copper-based WGS catalysts derived from copper ferrite
International Journal of Hydrogen Energy, 39(12), 6424-6432 (2014)
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