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Home > Inorganic Chemistry
Inorganic chemistry focuses on studying and explaining the properties and reactions of all elements and inorganic compounds, excluding hydrocarbons and their derivatives. It encompasses the exploration, both experimentally and theoretically, of inorganic molecules and compounds. The inorganic chemistry covers inorganic compounds such as salts, metals, minerals, and coordination complexes.

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2538 Inorganic Chemistry items

Aurate(1-), tetrachloro-, ammonium, hydrate, (SP-4-1)-

CAS No: 13874-04-9

Formula: AuCl4.H4N.xH2O

Categories: Inorganic Chemistry > Inorganic Salts

3-Quinolinecarboxamide

CAS No: 6480-67-7

Formula: C10H8N2O

Categories: Inorganic Chemistry > Silica gel

10H-Pyrido[3,2-b][1,4]benzothiazine

CAS No: 261-96-1

Formula: C11H8N2S

Categories: Inorganic Chemistry > Inorganic Salts

10H-Pyrido[3,2-b][1,4]benzothiazine has potential anti-cancer ability as seen through studies.More

SODIUM METABORATE

CAS No: 35585-58-1

Formula: BH16NaO10

Categories: Inorganic Chemistry > Inorganic Salts

tricl; can be prepared by heating slurry of tetrahydrate above 54°C; stable phase for saturated solutions from 54 to 105°C; a hemihydrate forms at higher temperatures; absorbs atmospheric CO2forming borax and sodium carbonate [KIR78]More

2-Ethylhexanal

CAS No: 123-05-7

Formula: C8H16O

Categories: Inorganic Chemistry > Perfuming

clear liquid Ethyl hexaldehyde is a colorless liquid with a mild, pleasant odor.ChEBI: A fatty aldehyde that is heptane in which one of the hydrogens at position 3 has been replaced by a formyl group. It is a metabolite of the plasticisers di-2-ethylhexyl phthalate (DEHP) and di-2-ethylhexyl adipate (DEHA).White liquid with a mild odor. Floats on water.More

Aluminum carbide (Al4C3)

CAS No: 1299-86-1

Formula: C3Al4

Categories: Inorganic Chemistry > Inorganic Salts

ALUMINUM CARBIDE is a yellow powder or crystals. Used to make other chemicals.More

Sodium bifluoride

CAS No: 1333-83-1

Formula: F2H.Na

Categories: Inorganic Chemistry > Inorganic Salts

1. Used as food preservative, animal specimen and anatomical specimen preservative and preservative. It is also used for etching glass, tin plate manufacturing, textile processing to remove rust, leather insect control and tinplate production.More

Zinc tetrafluoroborate

CAS No: 13826-88-5

Formula: BF4.1/2Zn

Categories: Inorganic Chemistry > Inorganic Salts

ZINC FLUOROBORATE is a colorless odorless aqueous solution. Sinks and mixes with water. (USCG, 1999)More

Samarium iodide (SmI2)

CAS No: 32248-43-4

Formula: I2Sm

Categories: Inorganic Chemistry > Inorganic Salts

Deep bleu-green solutionMore

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Zirconium nitride (ZrN)

CAS No: 25658-42-8

Formula: NZr

Categories: Inorganic Chemistry > Inorganic Salts

Mohs hardness 8+. Slightly soluble in dilute hydrochloric acid and sulfuric acid; soluble in concentrated acids.More

Basic copper sulfate

CAS No: 1344-73-6

Formula:

Categories: Inorganic Chemistry > Inorganic Salts

Used as sterilizer, insecticide, etc.More

SAMARIUM CARBONATE

CAS No: 38245-37-3

Formula: C3O9Sm2

Categories: Inorganic Chemistry > Inorganic Salts

Samarium Carbonate has specialized uses in glass, phosphors, lasers, and thermoelectric devices. Samarium is added to ceramics and glasses where it increases absorption of infrared light. It is also used as catalyst and chemical reagent. Samarium catalysts assist decomposition of plastics, dechlorination of pollutants. These magnets are found in small motors, headphones, and high-end magnetic pickups for guitars and related musical instruments. More

Calcium metaborate

CAS No: 13701-64-9

Formula: BHO2.1/2Ca

Categories: Inorganic Chemistry > Inorganic Salts

It is a new raw material in the alkali-free glass industry, and is also used in anti-rust coatings, flame retardants, mildew inhibitors and the pharmaceutical industry.More

AMMONIUM TETRABORATE TETRAHYDRATE

CAS No: 12228-87-4

Formula: B4H16N2O11

Categories: Inorganic Chemistry > Inorganic Salts

Cobalt iodide (CoI2)

CAS No: 15238-00-3

Formula: CoI2

Categories: Inorganic Chemistry > Inorganic Salts

Cobalt iodide, an inorganic compound composed of cobalt and iodine, has shown wide application potential in many scientific and industrial fields due to its unique chemical and physical properties. The properties of this compound, such as its unique color change, ionic conductivity and REDOX capacity, make it an important role in the fields of analytical chemistry, materials science, electrochemistry, medicine and catalysis. In the laboratory of analytical chemistry, cobalt iodide is widely used as a reagent for colorimetric analysis and spectrophotometry. Its color changes significantly and it can form stable complexes with specific ions, which makes it extremely sensitive and selective in the detection and quantitative analysis of certain metal ions and organic compounds. For example, by looking at changes in the color of cobalt iodide solutions, scientists can accurately determine trace amounts of lead or copper ions in a water sample. In the ceramic and glass manufacturing industry, cobalt iodide is favored for its distinctive blue or purple hue. When added as an additive to ceramic glaze or glass melt, it can give the product a kind of artistic and decorative beauty. This color effect is especially valued when making fine tableware, decorative glass and artistic ceramics. The application of cobalt iodide in the field of electrochemistry is mainly reflected in its ability as an electrolyte component and an electrochemical cell component. Its high ionic conductivity and REDOX properties make it potentially valuable in the design of rechargeable batteries, fuel cells and electrochemical sensors. For example, cobalt iodide can improve the electrochemical performance of certain types of fuel cells, thereby increasing their energy conversion efficiency. In the field of medical research, cobalt iodide has attracted attention due to its properties of interacting with the human endocrine system. Research suggests it may have potential for treating certain thyroid diseases. However, due to the toxicity of cobalt iodide, the exploration of its medical application is still in the preliminary stage, and more research is needed to balance its therapeutic effects with potential side effects. In addition, the application of cobalt iodide in the field of catalysis is also becoming increasingly apparent. Its unique REDOX properties and ability to form complex structures make it show good performance as a catalyst or catalyst precursor in chemical reactions such as organic synthesis, environmental protection and energy conversion. For example, cobalt iodide can promote certain green chemical reactions, such as the reduction of carbon dioxide, which can help develop sustainable energy and chemical production strategies. Despite the promising applications of cobalt iodide, its potential toxicity and the challenges of handling and disposal cannot be ignored. Therefore, while using cobalt iodide, scientists and industry must conduct in-depth research and develop appropriate management strategies to ensure that its application in various fields can bring technological progress, while taking into account the safety of the environment and human health.More

Praseodymium sulfate

CAS No: 10277-44-8

Formula: H2O4S.2/3Pr

Categories: Inorganic Chemistry > Inorganic Salts

Scientific research reagents, biochemical researchMore

COBALT(II) SULFATE HYDRATE

CAS No: 60459-08-7

Formula: CoH2O5S

Categories: Inorganic Chemistry > Inorganic Salts

Reddish crystalline powderMore

Frequently Asked Questions

Why is inorganic chemistry important in industry?

Inorganic chemistry is fundamental to multiple industries. It supports the development of catalysts, pigments, coatings, fertilizers, batteries, ceramics, and pharmaceutical intermediates. Understanding inorganic reactions and properties allows industries to improve product performance, increase efficiency, and develop innovative solutions for modern technology and sustainable processes.

What is the difference between inorganic and organic chemistry?

The main difference lies in the type of compounds studied:

Organic chemistry focuses on carbon-containing compounds, including hydrocarbons and their derivatives, studying their structure, reactivity, synthesis, and applications.

Inorganic chemistry focuses on compounds not primarily based on carbon-hydrogen bonds, including metals, salts, minerals, and nonmetal compounds, exploring their properties, reactions, and industrial applications.

Both branches overlap in areas like organometallics and coordination chemistry, but their core scope differs.

What substances are inorganic?

Inorganic substances are those that generally lack C-H bonds. Examples include salts such as sodium chloride and potassium nitrate; metals like iron, copper, and aluminum; minerals and oxides such as quartz, diamond, and titanium dioxide; and other compounds including inorganic phosphates, sulfates, and nitrates. Inorganic compounds are widely used in chemical manufacturing, catalysis, materials, electronics, water treatment, and environmental applications.

What is inorganic chemistry?

Inorganic chemistry is the branch of chemistry that studies compounds and elements that generally do not contain carbon-hydrogen (C-H) bonds. It focuses on the properties, structures, reactions, and applications of inorganic substances, which include metals, salts, minerals, oxides, acids, bases, and coordination compounds. Inorganic chemistry plays a key role in industries such as materials science, catalysis, energy storage, pharmaceuticals, and environmental chemistry.

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