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  2. Sodium bicarbonate - Wikipedia

    en.wikipedia.org/wiki/Sodium_bicarbonate

    Sodium bicarbonate (IUPAC name: sodium hydrogencarbonate [9]), commonly known as baking soda or bicarbonate of soda, is a chemical compound with the formula NaHCO 3. It is a salt composed of a sodium cation (Na +) and a bicarbonate anion (HCO 3 −). Sodium bicarbonate is a white solid that is crystalline but often appears as a

  3. Bicarbonate - Wikipedia

    en.wikipedia.org/wiki/Bicarbonate

    A bicarbonate salt forms when a positively charged ion attaches to the negatively charged oxygen atoms of the ion, forming an ionic compound. Many bicarbonates are soluble in water at standard temperature and pressure; in particular, sodium bicarbonate contributes to total dissolved solids, a common parameter for assessing water quality. [6]

  4. Sodium salts - Wikipedia

    en.wikipedia.org/wiki/Sodium_salts

    Examples of important inorganic sodium salts are sodium fluoride, sodium chloride, sodium bromide, sodium iodide, sodium sulfate, sodium bicarbonate and sodium carbonate. Sodium amide (NaNH 2) is the sodium salt of ammonia (NH 3).

  5. Natron - Wikipedia

    en.wikipedia.org/wiki/Natron

    Natron is a naturally occurring mixture of sodium carbonate decahydrate (Na 2 CO 3 ·10H 2 O, a kind of soda ash) and around 17% sodium bicarbonate (also called baking soda, NaHCO 3) along with small quantities of sodium chloride and sodium sulfate. Natron is white to colourless when pure, varying to gray or yellow with impurities.

  6. Sodium - Wikipedia

    en.wikipedia.org/wiki/Sodium

    Sodium chloride is extensively used for anti-icing and de-icing and as a preservative; examples of the uses of sodium bicarbonate include baking, as a raising agent, and sodablasting. Along with potassium, many important medicines have sodium added to improve their bioavailability ; though potassium is the better ion in most cases, sodium is ...

  7. Amphoterism - Wikipedia

    en.wikipedia.org/wiki/Amphoterism

    Amphiprotism is exhibited by compounds with both Brønsted acidic and basic properties. [3] A prime example is H 2 O. Amphiprotic molecules can either donate or accept a proton ( H + ). Amino acids (and proteins ) are amphiprotic molecules because of their amine ( −NH 2 ) and carboxylic acid ( −COOH ) groups.

  8. Carboxylic acid - Wikipedia

    en.wikipedia.org/wiki/Carboxylic_acid

    Such reactions are sometimes called "Reppe chemistry." HC≡CH + CO + H 2 O → CH 2 =CH−CO 2 H. Hydrolysis of triglycerides obtained from plant or animal oils. These methods of synthesizing some long-chain carboxylic acids are related to soap making. Fermentation of ethanol. This method is used in the production of vinegar.

  9. Base (chemistry) - Wikipedia

    en.wikipedia.org/wiki/Base_(chemistry)

    A strong base is a basic chemical compound that can remove a proton (H +) from (or deprotonate) a molecule of even a very weak acid (such as water) in an acid–base reaction. Common examples of strong bases include hydroxides of alkali metals and alkaline earth metals, like NaOH and Ca(OH)