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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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2539 Inorganic Chemistry items

Bismuth trinitrate pentahydrate

CAS No: 10035-06-0

Formula: Bi.5H2O.3HNO3

Categories: Inorganic Chemistry > Inorganic Salts

White CrystalBismuth nitrate is the bismuth salt form of nitrate, usually existing in pentahydrate form. People apply bismuth salt to the skin for hemorrhoids. People use bismuth as an enema for pouchitis. This condition involves inflammation in an artificial rectum created after surgery for ulcerative colitis. Bismuth salts are also added to cosmetics, batteries, paints, and pigment plastics in manufacturing. Bismuth nitrate is used to catalyze various kinds of reactions including chemo-selecMore

Strontium hydroxide

CAS No: 18480-07-4

Formula: H2O2Sr

Categories: Inorganic Chemistry > Buffering

It is used to prepare strontium lubricating wax and various strontium salts. It can also be used to improve the drying properties of dry oils and paints, as well as the refinement of beet sugar, etc.More

Zinc iodide

CAS No: 10139-47-6

Formula: I2Zn

Categories: Inorganic Chemistry > Inorganic Salts

Used for iodine starch reagent to determine nitrite. Used as a reagent to analyze free chlorine and other gasification agents.More

Samarium oxide (Sm2O3)

CAS No: 12060-58-1

Formula: O3Sm2

Categories: Inorganic Chemistry > Inorganic Salts

light beige crystalline powderAs a highly insoluble thermally stable Samarium source, Samarium Oxalate has specialized applications in glass, ceramic, phosphors, lasers, and thermoelectric devices, etc. Another essential application of Samarium and its compounds is used as catalyst and chemical reagent, which is effective to catalyze dehydration of acyclic primary alcohols to aldehydes and ketones. In its usual oxidized form, Samarium can be added to ceramics, optical and infrared absorbing glaMore

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Hydrogen iodide

CAS No: 10034-85-2

Formula: HI

Categories: Inorganic Chemistry > Inorganic Acid

hydrogen iodide: A colourless gas,HI; m.p. –51°C; b.p. –35.38°C. It canbe made by direct combination ofthe elements using a platinum catalyst.It is a strong acid dissociating extensivelyin solution (hydroiodic acid or hydriodic acid). It is also a reducingagent.A colorless to yellow liquid with a pungent odor. Consists of a solution of hydrogen iodide in water. Fumes irritate the eyes and mucous membranes. Corrosive to metals and to tissue.More

Silver oxide (Ag2O)

CAS No: 20667-12-3

Formula: Ag2O

Categories: Inorganic Chemistry > Antimicrobials

Silver(I) oxide, Ag2O, is made by action of oxygen under pressure on silver at 300 °C, or by precipitation of a silver salt with carbonate-free alkali metal hydroxide; it is covalent, each silver atom (in solid Ag2O) having two collinear bonds and each oxygen atom four tetrahedral ones; two such interpenetrating lattices constitute the structure. Dark-brown or black powder; odorless; metallic taste.Soluble in ammonium hydroxide, potassium cyanide solu- tion, nitric acid, and sodium thiosulfate More

Ammonium tungstate ((NH4)10W12O41)

CAS No: 11120-25-5

Formula: H4N.1/10H2O42W12

Categories: Inorganic Chemistry > Inorganic Salts

manufacture of tungsten alloys.More

CADMIUM SULFATE

CAS No: 15244-35-6

Formula: CdH16O12S

Categories: Inorganic Chemistry > Inorganic Salts

Applied in the formation of novel two-dimensional Cd-SCN coordination solids with unusual and tailorable, checkerboard- or herringbone-patterned structures these structures are important steps toward technologically useful materials.1More

Praseodymium oxide

CAS No: 11113-81-8

Formula:

Categories: Inorganic Chemistry > Oxides and Peroxides

DryPowderMore

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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