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Home > Inorganic Chemistry > Inorganic Salts (Find 1906 items)
Discover the various applications of inorganic salts such as potassium chloride and potassium sulfate. Uncover the diverse uses in agriculture, chemical synthesis, and pharmaceuticals. Explore the CAS NO., properties, and SDS of these essential inorganic salts. Source raw potassium chloride and potassium sulfate materials from certified suppliers, and ensure comprehensive product information.

Calcium tungstate

(7790-75-2)
Very small crystals have been used for injection into malignant tumors, etc., thus affording by transillumination a means of x-ray treatment; for preparing screens for x-ray observations and photographs; in luminous paints; in scintillation counters.

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Ruthenium dioxide

(12036-10-1)
Chemical catalyst is an important raw material for making resistors and capacitors

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Strontium chromate

(7789-06-2)
Corrosion inhibitor in pigments; in electrochemical processes to control sulfate concentration of solutions.

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Guanidine, phosphate (2:1)

(5423-23-4)
Used as flame retardant, waterproof agent and rust inhibitor for wood, fiber, paper, etc.

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Titanium carbide (TiC)

(12070-08-5)
Used as a cermet, it has the characteristics of high hardness, corrosion resistance and good thermal stability. It can also be used to make cutting tools. Used as a deoxidizer in the steelmaking industry.

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Barium iodide

(13718-50-8)
In the manufacture of other iodides.

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11,12-dihydroindolo[2,3-a]carbazole

(60511-85-5)

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Lithium dihydrogen phosphate

(13453-80-0)
Lithium Dihydrogen Phosphate (chemical formula: LiH₂PO₄) is an inorganic compound belonging to the class of phosphates. This compound usually appears in a white crystalline form and has the property of being highly soluble with water, so it is widely used in the field of chemical synthesis and materials science. Specifically, Lithium Dihydrogen Phosphate has important applications in several fields. First, in the field of battery materials, Lithium Dihydrogen Phosphate is used as an electrolyte or additive for lithium-ion batteries. It can help improve the energy density and cycle life of the battery, which makes the performance of the battery in various electronic devices more excellent. Secondly, in the field of agriculture, Lithium Dihydrogen Phosphate can be used as a phosphorus source for the manufacture of agricultural fertilizers. Phosphorus is one of the essential nutrients for plant growth, and by using fertilizers containing LiH₂PO₄, the phosphorus required by plants can be effectively supplied, thus promoting healthy plant growth. In addition, in the field of organic chemistry, Lithium Dihydrogen Phosphate can be used as a catalyst or reagent in synthetic reactions. It plays an important role in chemical synthesis by helping to form other compounds. Finally, in the pharmaceutical field, because of its biocompatibility, Lithium Dihydrogen Phosphate is also being studied for use in the pharmaceutical field as an ingredient in pharmaceutical formulations. This makes drug formulations safer and more effective, providing patients with better treatment options. Lithium Dihydrogen Phosphate is widely used in many fields, and its unique chemical properties make it an indispensable compound in scientific research and industrial production.

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Inorganic salts are mineral nutrients that exist in the body and in food. Most inorganic salts in cells exist in the form of ions and are composed of organic and inorganic substances. . At present, the human body has found more than 20 species, of which a large number of elements are calcium Ca, phosphorus P, potassium K, sulfur S, sodium Na, chlorine Cl, magnesium Mg, trace elements are iron Fe, zinc Zn, selenium Se, molybdenum Mo, fluorine F , Chromium Cr, cobalt Co, iodine I, etc.

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Inorganic salts, also known as minerals, encompass both major and trace elements, constituting essential substances in human metabolism. Most often, when referring to inorganic salts, we imply pure substances, such as laboratory-grade sodium chloride. We do not label it as table salt because additional substances are often added to table salt.


The primary distinction between inorganic and organic salts lies in the nature of their anions. Much of their chemical properties are determined by these anions. For instance, inorganic salts typically exhibit strong hydrophilicity, while organic salts may display affinity towards certain nonpolar reagents.


Despite their low concentration in cells and the human body, inorganic salts play significant roles. A diversified diet, with less animal fat consumption and more consumption of coarse grains like brown rice and corn, and limited intake of refined flour, helps maintain the normal levels of inorganic salts within the body.


Common inorganic salts include:
● sodium chloride
● potassium chloride
● calcium carbonate
● magnesium sulfate
● ammonium nitrate

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