Copper chromite

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Copper chromite
Names
Other names
oxo-(oxochromiooxy)chromium
Identifiers
12053-18-8 YesY
Jmol 3D model Interactive image
PubChem 3084101
  • InChI=1S/2Cr.2Cu.5O
  • O=[Cr]O[Cr]=O.O=[Cu].O=[Cu]
Properties
Cu2Cr2O5
Molar mass 311.0812 g/mol
Vapor pressure {{{value}}}
Except where otherwise noted, data are given for materials in their standard state (at 25 °C [77 °F], 100 kPa).
Infobox references

Copper chromite is an inorganic compound with the formula Cu2Cr2O5 which is used to catalyze reactions in organic synthesis.[1][2][3]

History

The material was first described in 1908.[4] The catalyst was developed in North America by Homer Burton Adkins and Wilbur Arthur Lazier partly based on interrogation of German chemists after World War II in relation to the Fischer-Tropsch process.[5] For this reason it is sometimes referred to as the Adkins catalyst or the Lazier catalyst.

Chemical structure

The compound commonly adopts a spinel structure. The oxidation states for the constituent metals are Cu(II) and Cr(III).[6] A variety of compositions are recognized for the substance, including Cr2CuO4·CuO·BaCrO4 (CAS# 99328-50-4) and Cr2Cu2O5 (CAS# 12053-18-8). Commercial samples often contain barium oxide and other components.

Production

Copper chromite is produced by thermal decomposition of one of three substances. The traditional method is by the uncatalyzed ignition of copper chromate:[7]

CuCrO
4
CuCrO
3
+ O

Copper barium ammonium chromate is the most commonly used substance for production of copper chromite. The resulting copper chromite mixture produced by this method can only be used in procedures that contain materials inert to barium, as barium is a product of the decomposition of copper barium ammonium chromate, and is thus present in the resulting mixture. The by-product copper oxide is removed using an acetic acid extraction, consisting of washing with the acid, decantation and then heat drying of the remaining solid to yield isolated copper chromite. Copper chromite is produced by the exposure of copper barium ammonium chromate to temperatures of 350-450°C, generally by a muffle furnace:[1]

Ba
2
Cu
2
(NH
4
)
2
(CrO
4
)
5
CrCuO3 + CuO + 2 Ba + 4 H
2
O
+ 4 Cr + N
2
+ 6 O
2

Copper ammonium chromate is also used for production of copper chromite. It is generally utilized as an alternative to the route of barium ammonium chromate for usage in chemicals reactive with barium. This can also be washed with acetic acid and dried to remove impurities. Copper chromite is produced through the exposure of copper ammonium chromate to temperatures of 350-450 °C:

Cu(NH
4
)
2
(CrO
4
)
2
CrCuO
3
+ CrO + 4 H
2
O
+ N
2

An active copper chromite catalyst which includes barium in its structure can be prepared from a solution containing barium nitrate, copper(II) nitrate, and ammonium chromate. When these compounds are mixed a resulting precipitate is formed. This solid product is then calcined at 350–400 °C to yield the catalyst:[8]

Cu(NO3)2 + Ba(NO3)2 + (NH4)2CrO4 → CuCr2O4·BaCr2O4

Illustrative reactions

Reactions involving hydrogen are conducted at relatively high gas pressure (135 atm) and high temperatures (150–300°C) in a so-called hydrogenation bomb. More active catalysts, such as W-6 grade Raney nickel, can also catalyze hydrogenations such as ester reductions. The latter catalyst benefits from requiring less vigorous conditions (e.g. it works at room temperature under similar hydrogenation pressures) but requires the chemist to use a higher ratio of catalyst to reagents.[2]

References

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  3. Cladingboel, D. E. "Copper Chromite" in Encyclopedia of Reagents for Organic Synthesis 2001 John Wiley & Sons. doi:10.1002/047084289X.rc221
  4. Gröger, M. "Über Ammoniumdoppelchromate" Zeitschrift fur anorganische Chemie volume 58, page 412-426 (1908). doi:10.1002/zaac.19080580138; "Chromite aus basischen Chromaten" ibid. volume 76, page 30-38 (1912). doi: 10.1002/zaac.19120760103
  5. Fischer-Tropsch Archive
  6. Prince, E. "Crystal and magnetic structure of copper chromite" Acta Crystallographica 1957, vol. 10, 554-6. doi:10.1107/S0365110X5700198X
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External links