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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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2537 Inorganic Chemistry items

9,9'-bis([1,1'-biphenyl]-4-yl)-3,3'-bi-9H-carbazole

CAS No: 57102-51-9

Categories: Inorganic Chemistry > Inorganic Salts

Lutetium nitrate

CAS No: 10099-67-9

Formula: HNO3.1/3Lu

Categories: Inorganic Chemistry > Inorganic Salts

THULIUM (III) NITRATE

CAS No: 36548-87-5

Formula: H10N3O14Tm

Categories: Inorganic Chemistry > Inorganic Salts

a yellowish or grayish white crystal(s) [STR93]More

Vanadium tetrachloride

CAS No: 7632-51-1

Formula: Cl4V

Categories: Inorganic Chemistry > Inorganic Salts

Red liquid. Decomposes slowly to vanadium trichloride and chlorine below63C. Soluble in absolute alcohol and ether. Nonflammable. Vanadium tetrachloride is a thick, reddishbrown liquid that gives off fumes on exposure to moist air.More

Ammonium nitrite

CAS No: 13446-48-5

Formula: H3N.HNO2

Categories: Inorganic Chemistry > Inorganic Salts

3-CHLOROCARBAZOLE

CAS No: 2732-25-4

Formula: C12H8ClN

Categories: Inorganic Chemistry > Inorganic Salts

6-broMo-4-hydroxyquinolin-2(1H)-one

CAS No: 54675-23-9

Formula: C9H6BrNO2

Categories: Inorganic Chemistry > Inorganic Salts

SODIUM BISMUTHATE

CAS No: 12232-99-4

Formula: BiH3NaO

Categories: Inorganic Chemistry > Inorganic Salts

yellow-brown powderMore

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LANTHANUM NITRATE HYDRATE

CAS No: 100587-94-8

Formula: H2LaN3O10

Categories: Inorganic Chemistry > Inorganic Salts

Starting material for the electrochemical synthesis of a LaMnO3 thin film coating on stainless steel substrates.1 A novel solvothermal process for formation of doped lanthanide oxysulfide, La2O2S, was developed in order to advance possible applications of this material in phosphors, fluorescent display tubes or heat transfer measurement.2More

Scandium iodide (ScI3)

CAS No: 14474-33-0

Formula: I3Sc

Categories: Inorganic Chemistry > Inorganic Salts

Scandium Iodide (ScI₃) is an inorganic compound composed of the two elements scandium (Sc) and iodine (I) in a specific ratio, and its chemical formula is ScI₃. This compound usually exists in a colorless or yellowish solid form and has a high melting point and good thermal stability. Scandium Iodide has very important research value in the field of inorganic chemistry and materials science, especially in the research and application of optical and electronic materials. Scandium Iodide is an ionic compound that is usually found in a crystal structure that gives it good thermal and electrical conductivity. As a rare earth metal halide, Scandium Iodide exhibits excellent stability at high temperatures and is able to carry out various chemical reactions in a molten state. Its unique physical and chemical properties have made Scandium Iodide a focus of attention in scientific research and industrial applications, becoming the focus of research by many researchers and engineers.More

Boric acid, aluminum salt

CAS No: 11121-16-7

Formula: AlBO3

Categories: Inorganic Chemistry > Inorganic Salts

Niobium selenide (NbSe2)

CAS No: 12034-77-4

Formula: NbSe2

Categories: Inorganic Chemistry > Inorganic Salts

Nickel phosphate (Ni3(PO4)2)

CAS No: 10381-36-9

Formula: H3O4P.3/2Ni

Categories: Inorganic Chemistry > Inorganic Salts

Nickel phosphate (chemical formula Ni3(PO4)2) is a special compound that is liquid at room temperature and has unique chemical properties. In order to precisely describe its properties for search and use in the field of chemistry, it was assigned a specific CAS number: 10381-36-9. This number is like a chemical substance's ID number, which precisely defines its chemical properties. From the chemical formula, nickel phosphate can also be expressed as H3O4P·3/2Ni, which shows the exact proportion and bonding of nickel, phosphorus, oxygen, and hydrogen elements in the molecular structure. In different disciplines and application fields, nickel phosphate has many different names and nicknames. For example, it is called phosphate, nickel salt (ratio of 2:3), nickel phosphate (Ni3(PO4)2), nickel phosphate oxide, nickel phosphate (Ni3P2O8), tri-nickel diphosphate, nickel salt (II) phosphate, etc. Although there are many names, they actually refer to the same chemical substance. Nickel phosphate belongs to the category of inorganic salts in inorganic chemistry, which is its most basic chemical property. In practical applications, nickel phosphate has a very special use, namely, it can generate "nickel yellow" pigment during the ignition process. This pigment is widely used in the production of paint, watercolor and other art materials due to its unique color and properties. Nickel phosphate, in addition to being used as a raw material for pigments, is also commonly used as an electroplating agent and surface treatment agent. During electroplating, it helps form a uniform protective layer on the metal surface, improving the metal's corrosion resistance and appearance. In surface treatment, nickel phosphate also plays an important role, it can be used to improve the physical and chemical properties of materials, enhance their service life and performance. As a chemical substance, the important role of nickel phosphate in the chemical field is self-evident, and it also plays a wide range of roles in industrial production and artistic creation.More

LITHIUM-6 HYDROXIDE MONOHYDRATE

CAS No: 76576-67-5

Formula: H3LiO2

Categories: Inorganic Chemistry > Oxides and Peroxides

Used for making lithium salt and lithium base grease, electrolyte of alkaline storage battery, absorption liquid of lithium bromide refrigerator, etc.More

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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