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  2. Hydronium - Wikipedia

    en.wikipedia.org/wiki/Hydronium

    In chemistry, hydronium (hydroxonium in traditional British English) is the cation [H 3 O] +, also written as H 3 O +, the type of oxonium ion produced by protonation of water.It is often viewed as the positive ion present when an Arrhenius acid is dissolved in water, as Arrhenius acid molecules in solution give up a proton (a positive hydrogen ion, H +) to the surrounding water molecules (H 2 O).

  3. Acid–base titration - Wikipedia

    en.wikipedia.org/wiki/Acid–base_titration

    The pH after the equivalence point depends on the concentration of the conjugate base of the weak acid and the strong base of the titrant. However, the base of the titrant is stronger than the conjugate base of the acid. Therefore, the pH in this region is controlled by the strong base. As such the pH can be found using the following: [1]

  4. pH - Wikipedia

    en.wikipedia.org/wiki/PH

    The pH of a solution is defined as the negative logarithm of the concentration of H+, and the pOH is defined as the negative logarithm of the concentration of OH-. For example, the pH of a 0.01M solution of hydrochloric acid (HCl) is equal to 2 (pH = −log 10 (0.01)), while the pOH of a 0.01M solution of sodium hydroxide (NaOH) is equal to 2 ...

  5. pH indicator - Wikipedia

    en.wikipedia.org/wiki/PH_indicator

    A pH indicator is a halochromic chemical compound added in small amounts to a solution so the pH ( acidity or basicity) of the solution can be determined visually or spectroscopically by changes in absorption and/or emission properties. [1] Hence, a pH indicator is a chemical detector for hydronium ions (H 3 O +) or hydrogen ions (H +) in the ...

  6. Henderson–Hasselbalch equation - Wikipedia

    en.wikipedia.org/wiki/Henderson–Hasselbalch...

    The Henderson–Hasselbalch equation can be used to estimate the pH of a buffer solution by approximating the actual concentration ratio as the ratio of the analytical concentrations of the acid and of a salt, MA. The equation can also be applied to bases by specifying the protonated form of the base as the acid. For example, with an amine,

  7. Acid strength - Wikipedia

    en.wikipedia.org/wiki/Acid_strength

    t. e. Acid strength is the tendency of an acid, symbolised by the chemical formula , to dissociate into a proton, , and an anion, . The dissociation or ionization of a strong acid in solution is effectively complete, except in its most concentrated solutions. Examples of strong acids are hydrochloric acid , perchloric acid , nitric acid and ...

  8. RICE chart - Wikipedia

    en.wikipedia.org/wiki/RICE_chart

    RICE chart. An ICE table or RICE box or RICE chart is a tabular system of keeping track of changing concentrations in an equilibrium reaction. ICE stands for initial, change, equilibrium. It is used in chemistry to keep track of the changes in amount of substance of the reactants and also organize a set of conditions that one wants to solve ...

  9. Standard electrode potential (data page) - Wikipedia

    en.wikipedia.org/wiki/Standard_electrode...

    PH 3 (g) -0.063 3 [10] N: N 2 O (g) + H 2 O (l) + 6 H + + 4 e −: ⇌: 2 NH 3 OH +-0.05: 4 [6]: 789 Fe Fe 3+ + 3 e −: ⇌ Fe(s) -0.04 3 [12] C HCOOH(aq) + 2 H + + 2 e −: ⇌ HCHO(aq) + H 2 O-0.034 2 [6]: 788 H 2 H + + 2 e −: ⇌ H 2 (g) 0 2 Ag AgBr(s) + e −: ⇌ Ag(s) + Br −: 0.07133 1 [10] S S 4 O 2− 6 + 2 e −: ⇌ 2 S 2 O 2− ...