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  2. Copper(II) nitrate - Wikipedia

    en.wikipedia.org/wiki/Copper(II)_nitrate

    Copper(II) nitrate describes any member of the family of inorganic compounds with the formula Cu(NO 3) 2 (H 2 O) x. The hydrates are hygroscopic blue solids. Anhydrous copper nitrate forms blue-green crystals and sublimes in a vacuum at 150-200 °C. [5] [6] Common hydrates are the hemipentahydrate and trihydrate.

  3. List of CAS numbers by chemical compound - Wikipedia

    en.wikipedia.org/wiki/List_of_CAS_numbers_by...

    copper(II) molybdate: 13767–34–5 Cu(NO 3) 2: copper(II) nitrate: 3251–23–8 CuN 3: copper(I) azide: 14336–80–2 Cu(N 3) 2: copper(II) azide: 14215–30–6 CuO: copper(II) oxide: 1317–38–0 Cu(OH) 2: copper(II) hydroxide: 20427–59–2 CuS: copper(II) sulfide: 1317–40–4 CuSCN: copper(I) thiocyanate: 1111–67–7 CuSO 4 ...

  4. List of copper salts - Wikipedia

    en.wikipedia.org/wiki/List_of_copper_salts

    Copper is a chemical element with the symbol Cu (from Latin: cuprum) and the atomic number of 29. It is easily recognisable, due to its distinct red-orange color.Copper also has a range of different organic and inorganic salts, having varying oxidation states ranging from (0,I) to (III).

  5. Hardnesses of the elements (data page) - Wikipedia

    en.wikipedia.org/wiki/Hardnesses_of_the_elements...

    This page was last edited on 16 November 2024, at 12:16 (UTC).; Text is available under the Creative Commons Attribution-ShareAlike 4.0 License; additional terms may apply.

  6. Copper compounds - Wikipedia

    en.wikipedia.org/wiki/Copper_compounds

    Many other oxyanions form complexes; these include copper(II) acetate, copper(II) nitrate, and copper(II) carbonate. Copper(II) sulfate forms a blue crystalline pentahydrate, the most familiar copper compound in the laboratory. It is used in a fungicide called the Bordeaux mixture. [3] Ball-and-stick model of the complex [Cu(NH 3) 4 (H 2 O) 2 ...

  7. Category:Copper(II) compounds - Wikipedia

    en.wikipedia.org/wiki/Category:Copper(II)_compounds

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  8. Copper(II) oxide - Wikipedia

    en.wikipedia.org/wiki/Copper(II)_oxide

    It can be formed by heating copper in air at around 300–800 °C: 2 Cu + O 2 → 2 CuO. For laboratory uses, copper(II) oxide is conveniently prepared by pyrolysis of copper(II) nitrate or basic copper(II) carbonate: [4] 2 Cu(NO 3) 2 → 2 CuO + 4 NO 2 + O 2 (180°C) Cu 2 (OH) 2 CO 3 → 2 CuO + CO 2 + H 2 O. Dehydration of cupric hydroxide ...

  9. Talk:Copper (II) nitrate - Wikipedia

    en.wikipedia.org/wiki/Talk:Copper(II)_nitrate

    1 Wrong MSDS is attached --REALLY ... 3 Crystal structures of anhydrous and hydrated copper(II) nitrates. 5 comments. 4 Balanced Chemical Equation? 3 comments ...