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Oxides chromium

The hydrated product, CrPj HjO, known as Viridian Green, is a blue shade of green. Cl Pigment Green 18, having excellent fastness properties and is suitable for use in both inks and paints. [Pg.126]


Veliah S, Xiang K H, Pandey R, Redo J M and Newsam J M 1998 Density functional study of chromium oxide dusters structure, bonding, vibrations, and stability Phys. Rev. B 102 1126... [Pg.2407]

Note. Both tetramethylene glycol (1 4-butanediol) and hexamethylene glycol (1 6 hexaiiediol) may be prepared more conveniently by copper-chromium oxide reduction (Section VI,6) or, for small quantities, by reduction with lithium aluminium hydride (see Section VI,10). [Pg.251]

By passing the alcohol vapour over a copper - chromium oxide catalyst deposit on pumice and heated to 330°, for example ... [Pg.318]

It difiers from the cof per. chromium oxide catalyst described in Section VI,6 in that it has not been extracted with 10 per cent, acetic acid—a process which presumably removes some copper oxide. [Pg.321]

Trimethylene dibromide (Section 111,35) is easily prepared from commercial trimethj lene glycol, whilst hexamethylene dibromide (1 O dibromohexane) is obtained by the red P - Br reaction upon the glycol 1 6-hexanediol is prepared by the reduction of diethyl adipate (sodium and alcohol lithium aluminium hydride or copper-chromium oxide and hydrogen under pressure). Penta-methylene dibromide (1 5-dibromopentane) is readily produced by the red P-Brj method from the commercially available 1 5 pentanediol or tetra-hydropyran (Section 111,37). Pentamethylene dibromide is also formed by the action of phosphorus pentabromide upon benzoyl piperidine (I) (from benzoyl chloride and piperidine) ... [Pg.489]

The product is the isomer with the two phenyl groups cis to each other, since decarboxylation with quinoline-copper chromium oxide at 210-220° yields cis-stilbene. [Pg.713]

Hydrogenations with coppcr-chromium oxide catalyst are usually carried out in the liquid phase in stainless steel autoclaves at pressures up to 5000-6000 lb. per square inch. A solvent is not usually necessary for hydrogenation of an ester at 250° since the original ester and the alcohol or glycol produced serve as the reaction medium. However, when dealing with small quantities and also at temperatures below 200° a solvent is desirable this may be methyl alcohol, ethyi alcohol, dioxan or methylcyc/ohexane. [Pg.872]

This preparation illustrates the use of the copper-chromium oxide catalyst in the r uotion of esters of dibasic acids to glycols ... [Pg.873]

Plot of pMp° - p) against p/p° (r is expressed in cm (stp)). (1) Unpromoted Fe catalyst (2) AljOj-promoted Fe catalyst (3) AI2O3-KjO-promoted Fe catalyst (4) fused copper catalyst (5) chromium oxide gel (6) silica gel. (Courtesy Brunauer, Emmett and Teller.)... [Pg.50]

The equilibrium is more favorable to acetone at higher temperatures. At 325°C 97% conversion is theoretically possible. The kinetics of the reaction has been studied (23). A large number of catalysts have been investigated, including copper, silver, platinum, and palladium metals, as well as sulfides of transition metals of groups 4, 5, and 6 of the periodic table. These catalysts are made with inert supports and are used at 400—600°C (24). Lower temperature reactions (315—482°C) have been successhiUy conducted using 2inc oxide-zirconium oxide combinations (25), and combinations of copper-chromium oxide and of copper and silicon dioxide (26). [Pg.96]

C and 19,600 kPa (2800 psi). The catalyst is a complex aluminum—ca dmium —chromium oxide that has high activity and exceptionally long life. The process is claimed to give a conversion of ester to alcohol of about 99% retaining essentially all of the original double bonds. [Pg.449]

Aromatic rings in lignin may be converted to cyclohexanol derivatives by catalytic hydrogenation at high temperatures (250°C) and pressures (20—35 MPa (200—350 atm)) using copper—chromium oxide as the catalyst (11). Similar reduction of aromatic to saturated rings has been achieved using sodium in hquid ammonia as reductants (12). [Pg.139]

Hydrodynamic principles for gas bearings are similar to those involved with Hquid lubricants except that gas compressibility usually is a significant factor (8,69). With gas employed as a lubricant at high speeds, start—stop wear is minimized by selection of wear-resistant materials for the journal and bearing. This may involve hard coatings such as tungsten carbide or chromium oxide flame plate, or soHd lubricants, eg, PTFE and M0S2. [Pg.252]

There is also a two-step process of chromizing foUowed by aluminizing. Above 900°C the chromizing begins to rediffuse and the protective oxide changes to Al O from Cr202. Aluminum oxide is less volatile than chromium oxide and better for high temperature oxidation resistance above 1000°C. [Pg.136]

Stainless steel develops a passive protective layer (<5-nm thick) of chromium oxide [1118-57-3] which must be maintained or permitted to rebuild after it is removed by product flow or cleaning. The passive layer may be removed by electric current flow across the surface as a result of dissinulat metals being in contact. The creation of an electrolytic cell with subsequent current flow and corrosion has to be avoided in constmction. Corrosion may occur in welds, between dissimilar materials, at points under stress, and in places where the passive layer is removed it may be caused by food material, residues, cleaning solutions, and bmshes on material surfaces (see CORROSION AND CORROSION CONTROL). [Pg.361]

Second, in the early 1950s, Hogan and Bank at Phillips Petroleum Company, discovered (3,4) that ethylene could be catalyticaHy polymerized into a sohd plastic under more moderate conditions at a pressure of 3—4 MPa (435—580 psi) and temperature of 70—100°C, with a catalyst containing chromium oxide supported on siUca (Phillips catalysts). PE resins prepared with these catalysts are linear, highly crystalline polymers of a much higher density of 0.960—0.970 g/cnr (as opposed to 0.920—0.930 g/cnf for LDPE). These resins, or HDPE, are currentiy produced on a large scale, (see Olefin polymers, HIGH DENSITY POLYETHYLENE). [Pg.367]

HDPE resias are produced ia industry with several classes of catalysts, ie, catalysts based on chromium oxides (Phillips), catalysts utilising organochromium compounds, catalysts based on titanium or vanadium compounds (Ziegler), and metallocene catalysts (33—35). A large number of additional catalysts have been developed by utilising transition metals such as scandium, cobalt, nickel, niobium, molybdenum, tungsten, palladium, rhodium, mthenium, lanthanides, and actinides (33—35) none of these, however, are commercially significant. [Pg.383]

A wide variety of chromium oxide and Ziegler catalysts was developed for this process (61,62). Chromium-based catalysts produce HDPE with a relatively broad MWD other catalysts provide HDPE resins with low molecular weights (high melt indexes) and resins with a narrower MWD (63,64). [Pg.384]

Processes for HDPE with Broad MWD. Synthesis of HDPE with a relatively high molecular weight and a very broad MWD (broader than that of HDPE prepared with chromium oxide catalysts) can be achieved by two separate approaches. The first is to use mixed catalysts containing two types of active centers with widely different properties (50—55) the second is to employ two or more polymerization reactors in a series. In the second approach, polymerization conditions in each reactor are set drastically differendy in order to produce, within each polymer particle, an essential mixture of macromolecules with vasdy different molecular weights. Special plants, both slurry and gas-phase, can produce such resins (74,91—94). [Pg.387]


See other pages where Oxides chromium is mentioned: [Pg.99]    [Pg.377]    [Pg.260]    [Pg.321]    [Pg.872]    [Pg.872]    [Pg.873]    [Pg.920]    [Pg.161]    [Pg.99]    [Pg.211]    [Pg.211]    [Pg.211]    [Pg.211]    [Pg.211]    [Pg.211]    [Pg.249]    [Pg.486]    [Pg.13]    [Pg.164]    [Pg.122]    [Pg.501]    [Pg.139]    [Pg.275]    [Pg.361]    [Pg.6]    [Pg.383]    [Pg.383]    [Pg.385]   
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1.2- Diols chromium oxides

2,2 -Bipyridine chromium oxide complex

A-Chromium oxide

ALDEHYDES FROM PRIMARY ALCOHOLS BY OXIDATION WITH CHROMIUM TRIOXIDE

ALDEHYDES FROM PRIMARY ALCOHOLS BY OXIDATION WITH CHROMIUM TRIOXIDE: 1-HEPTANAL

Acrylic acid Chromium oxide

Activity chromium oxides

Alcohol oxidation with chromium

Alcohol oxidation with chromium Collins reagent

Alcohol oxidation with chromium Jones reagent

Alcohol oxidation with chromium pyridinium chlorochromate

Alcohol oxidation with chromium pyridinium dichromate

Alcohols oxidation with chromium derivatives

Alcohols, carbonylation chromium oxidation

Aldehydes Using chromium-based oxidants

Alkanes vanadium/chromium oxides

Alumina supported chromium oxid

Alumina supported chromium oxide

Aluminophosphates , chromium oxide

Aluminum-chromium oxides

Aluminum-chromium oxides catalyst

Carbon chromium oxide intercalation

Carbon monoxide oxidation chromium oxide catalyst

Catalysis chromium oxide

Catalysis chromium, in oxidation

Catalysts, beryllium chloride chromium oxide gel

Catalysts, supported chromium oxide

Catalytic hydrogenation copper-chromium oxide

Cathode materials chromium oxides

Chromate esters chromium oxidation

Chromium (Hydr)oxides

Chromium (VI) Oxidants

Chromium , in oxidation

Chromium , oxidizing agents

Chromium -based oxidants

Chromium EDTA oxidation

Chromium III) oxide

Chromium Ill) oxide

Chromium Oxides, Oxyanions, and Hydroxides

Chromium VI) oxide

Chromium aluminum oxid

Chromium aluminum oxid Copper chromite)

Chromium aluminum oxid copper oxide

Chromium aluminum oxid trioxide)

Chromium atom formal oxidation states

Chromium based oxides

Chromium based oxides acid-base properties

Chromium based oxides crystal structures

Chromium catalysts alcohol oxidation

Chromium chloride oxide

Chromium complexes oxidation

Chromium complexes oxidation catalysts

Chromium complexes oxide fluorides

Chromium complexes oxides

Chromium content oxidation

Chromium dioxide, oxidation

Chromium dioxide, oxidation alcohols

Chromium dioxide, oxidation aldehydes

Chromium from inner sphere oxidation

Chromium hexacarbonyl allylic oxidation

Chromium hydrocarbon oxidations

Chromium ions, oxidation

Chromium manganese oxide electrodes

Chromium oxidant systems

Chromium oxidants

Chromium oxidants

Chromium oxidants alcohols

Chromium oxidants alkenes

Chromium oxidants allylic oxidation

Chromium oxidants eliminating

Chromium oxidants, polymer

Chromium oxidants, polymer attachment

Chromium oxidation

Chromium oxidation agents

Chromium oxidation alcohols

Chromium oxidation catalyst

Chromium oxidation free atmosphere

Chromium oxidation intermediates

Chromium oxidation potential

Chromium oxidation reaction

Chromium oxidation states

Chromium oxide addition compounds

Chromium oxide applications

Chromium oxide catalysts

Chromium oxide conductivity

Chromium oxide dehydrogenation catalyst

Chromium oxide diffusion coefficient

Chromium oxide electrodes for NO sensors

Chromium oxide film, protective

Chromium oxide films

Chromium oxide fluorides

Chromium oxide green

Chromium oxide hydroxide

Chromium oxide layer, depth profile

Chromium oxide nitrate

Chromium oxide on alumina

Chromium oxide on silica

Chromium oxide phase diagrams

Chromium oxide photocatalysts

Chromium oxide pigments

Chromium oxide pressure

Chromium oxide sols

Chromium oxide, addition compounds with pyridine and 3and 4-picoline

Chromium oxide, adsorption

Chromium oxide, adsorption oxidation

Chromium oxide, catalysts, reactions over

Chromium oxide, copper sulfides

Chromium oxide, copper trioxide-pyridine

Chromium oxide, epoxidation

Chromium oxide, gel

Chromium oxide, hydrous

Chromium oxide, hydrous catalytic activity

Chromium oxide, interface with oxygen

Chromium oxide, isotopic oxygen

Chromium oxide, lacquer adhesion

Chromium oxide, magnetic

Chromium oxide, oxidant

Chromium oxide, powdered

Chromium oxide, supported

Chromium oxide, with acetic acid

Chromium oxide-3,5-dimethylpyrazole

Chromium oxide-Chlorotrimethylsilane

Chromium oxide-pyridine, oxidation with

Chromium oxide-quinoline

Chromium oxide-sulfuric acid

Chromium oxides acids

Chromium oxides esters

Chromium oxides hydrogenation

Chromium oxides hydrogenation catalyst

Chromium oxides, decompositions

Chromium oxides, deposition

Chromium oxides, ionization

Chromium oxides, names

Chromium oxides, structure

Chromium oxidized species

Chromium oxids

Chromium oxids

Chromium potassium oxide

Chromium potassium oxide (KCrO

Chromium potassium oxide bronze

Chromium reagents Jones oxidation

Chromium reagents alcohol oxidation

Chromium reagents alkane oxidation

Chromium reagents allylic oxidation

Chromium reagents oxidants

Chromium reagents oxidation

Chromium reagents oxidative cleavage of alkenes

Chromium reagents oxidative rearrangements

Chromium reagents two phase oxidation

Chromium reduction/oxidation

Chromium salts, oxidation

Chromium species, oxidation

Chromium stable oxidation states

Chromium substituted alcohol oxidations

Chromium tetrafluoride oxide

Chromium trioxide alcohol oxidation

Chromium trioxide allylic oxidation

Chromium trioxide benzylic oxidation

Chromium trioxide catalytic oxidation

Chromium trioxide oxidation, acetylated

Chromium trioxide oxidation, acetylated polysaccharides

Chromium trioxide oxidative cleavage of alkenes

Chromium trioxide, cyclic acetal oxidation

Chromium trioxide, for oxidation of cyclooctanol

Chromium trioxide, for oxidation of cyclooctanol to 18,20-lactone

Chromium trioxide, oxidation ethers

Chromium trioxide, oxidation methyl ketones

Chromium trioxide, selective oxidation

Chromium trioxide-3,5-dimethylpyrazole oxidant

Chromium trioxide-pyridine complex oxidant

Chromium! VI) oxide-3,5-dimethylpyrazole

Chromium(III) Oxide Pigments

Chromium(VI) Oxide (Chromic Acid)

Chromium(VI)-Based Oxidants

Chromium, Molybdenum and Tungsten Oxides

Chromium, oxidation-reduction behavior

Chromium, passive oxide films

Chromium, tricarbonyladdition-oxidation reactions

Chromium-based oxidation

Chromium-based oxidizing agents

Chromium-iron alloys oxidation, elevated temperatures

Chromium-nickel alloys oxidation, elevated temperatures

Chromium-uranium oxides

Coatings chromium oxide

Cobalt-chromium oxide catalysts

Copper - chromium oxide catalyst

Copper - chromium oxide catalyst for aldehyde synthesis

Copper - chromium oxide catalyst for hydrogenation

Copper - chromium oxide catalyst hydrogenolysis with

Copper chromite Chromium oxide)

Copper chromium oxide

Copper chromium oxide electrodes

Copper-chromium oxide INDEX

CrKo. 02, Potassium chromium oxide

Crown ethers chromium oxide

Cyclooctanol, oxidation by chromium

Cyclooctanol, oxidation by chromium trioxide to cyclooctanone

Degradation by oxidation with chromium trioxide

Dehydrogenation vanadium/chromium oxides

Diols aromatic, oxidation with chromium

Dioxygen chromium oxidation

Dipyridine chromium oxide

Electrochemical Reduction of Chromium(VI) Oxide

F Chlorotrimethylsilane Chromium oxide

Hydrated chromium oxide green

Hydrogen peroxide chromium oxidation

Hydrogenation, of a double bond over copper chromium oxide

Hydroquinones chromium oxide

Isomerization over chromium oxide catalysts

Lanthanum strontium chromium oxide electrodes

Layered compounds chromium oxides

Manganese chromium-zinc oxid

Manganese-chromium oxide

Manganous-chromium oxide

Mechanism oxidation with chromium

Metal Chromium (III) Oxides (Chromites)

Metal Chromium(III) Oxides

Methyl selective oxidation with chromium

Mixed metal oxides chromium compounds

Nafion chromium oxidants

Nation chromium oxidants

Nickel-chromium alloys oxidation

Nickel-chromium-iron alloys oxidation

Organochromium catalysts with chromium oxide

Other Chromium Oxidation States

Other Chromium-Based Oxidants

Oxidant systems, chromium toxicity

Oxidation State of Reduced Chromium

Oxidation benzylic position, chromium

Oxidation by chromium trioxide

Oxidation chromium trioxide

Oxidation chromium-catalyzed

Oxidation chromium-peroxo complexes

Oxidation enol, chromium trioxide

Oxidation iron-chromium alloys

Oxidation of chromium

Oxidation reactions using chromium based reagents

Oxidation states of chromium

Oxidation with Chromium Trioxide

Oxidation with Chromium Trioxide-Pyridine Complex

Oxidation, enzymic with chromium trioxide

Oxidations Using Catalytic Chromium Compounds

Oxidations by chromium(VI)

Oxidative cleavage with chromium reagents

Oxidative damage, chromium toxicity

Oxides chromium oxide

Oxides chromium oxide

Oxides of chromium

Oxidizing agents chromium compounds

Picoline-Chromium(VI) Oxide

Polymers chromium oxidants support

Potassium Chromium Oxide Bronzes KxCrO

Properties and Applications of Chromium(III) Oxide

Pyridine-Chromium(VI) Oxide

Pyridine-chromium oxide

Quinone diacetals chromium oxidants support

Rearrangement chromium oxidation

Resins chromium oxidants support

Sarett oxidation chromium oxide/pyridine complex

Solid oxide fuel cell chromium

Thin oxide film formation, metal chromium

Thiols chromium oxide

Titanium chromium oxides

Titanium-doped chromium oxide

Transition metal oxides chromium oxide

Vanadium-chromium oxide compounds

Zinc-chromium oxide

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