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  2. Chlorine - Wikipedia

    en.wikipedia.org/wiki/Chlorine

    These methods work best when the chloride product is stable to hydrolysis; otherwise, the possibilities include high-temperature oxidative chlorination of the element with chlorine or hydrogen chloride, high-temperature chlorination of a metal oxide or other halide by chlorine, a volatile metal chloride, carbon tetrachloride, or an organic ...

  3. Properties of nonmetals (and metalloids) by group - Wikipedia

    en.wikipedia.org/wiki/Properties_of_nonmetals...

    Chlorine is an irritating green-yellow diatomic gas that is extremely reactive, and has a gaseous density of 3.2 × 10 −3 g/cm 3 (about 2.5 times heavier than air). It condenses at −34.04 °C to an amber-coloured liquid and freezes at −101.5 °C into a yellow crystalline solid.

  4. Chlorine oxide - Wikipedia

    en.wikipedia.org/wiki/Chlorine_oxide

    chlorine chlorite, ClOClO, chlorine (I,III) oxide; dichlorine trioxide, Cl 2 O 3 as O−Cl−ClO 2, chlorine (III,V) oxide dichlorine trioxide, Cl 2 O 3 as possible isomer Cl−O−ClO 2, chlorine (I,V) oxide; dichlorine trioxide, Cl 2 O 3 as hypothetical isomer O−Cl−O−Cl−O, chlorine (III) oxide; dichlorine tetroxide, also known as ...

  5. Acidic oxide - Wikipedia

    en.wikipedia.org/wiki/Acidic_oxide

    Carbonic acid is an illustrative example of the Lewis acidity of an acidic oxide. CO 2 + 2OH − ⇌ HCO 3 − + OH − ⇌ CO 3 2− + H 2 O. This property is a key reason for keeping alkali chemicals well sealed from the atmosphere, as long-term exposure to carbon dioxide in the air can degrade the material.

  6. Chlorine dioxide - Wikipedia

    en.wikipedia.org/wiki/Chlorine_dioxide

    Chlorine dioxide is approximately 10 times more soluble in water than elemental chlorine [1] but its solubility is very temperature-dependent. At partial pressures above 10 kPa (1.5 psi) [1] (or gas-phase concentrations greater than 10% volume in air at STP) of ClO 2 may explosively decompose into chlorine and oxygen. The decomposition can be ...

  7. Chlorate - Wikipedia

    en.wikipedia.org/wiki/Chlorate

    3 anion, whose chlorine atom is in the +5 oxidation state. The term can also refer to chemical compounds containing this anion, with chlorates being the salts of chloric acid. Other oxyanions of chlorine can be named "chlorate" followed by a Roman numeral in parentheses denoting the oxidation state of chlorine: e.g., the ClO −

  8. Chlorous acid - Wikipedia

    en.wikipedia.org/wiki/Chlorous_acid

    Chlorous acid is an inorganic compound with the formula HClO 2. It is a weak acid. Chlorine has oxidation state +3 in this acid. The pure substance is unstable, disproportionating to hypochlorous acid (Cl oxidation state +1) and chloric acid (Cl oxidation state +5): 2 HClO 2 → HClO + HClO 3

  9. Hypochlorite - Wikipedia

    en.wikipedia.org/wiki/Hypochlorite

    Large amounts of sodium hypochlorite are also produced electrochemically via an un-separated chloralkali process. In this process brine is electrolyzed to form Cl 2 which dissociates in water to form hypochlorite. This reaction must be conducted in non-acidic conditions to prevent release of chlorine: 2 Cl − → Cl 2 + 2 e − Cl 2 + H 2 O ...