Dissociation is the process by which a chemical combination breaks up into simpler constituents as a result of either added energy (dissociated by heat), or the effect of a solvent on a dissolved polar compound (electrolytic dissociation). It may occur in the gaseous, solid, or liquid state, or in a solution.
An example of dissociation is the reversible reaction of hydrogen iodide at high temperatures
The term dissociation is also applied to ionisation reactions of acids and bases in water. For example
which is often regarded as a straightforward dissociation into ions
Dissociation constant is a constant whose numerical value depends on the equilibrium between the undissociated and dissociated forms of a molecule. A higher value indicates greater dissociation.
The term dissociation is also applied to ionisation reactions of acids and bases in water. For example
which is often regarded as a straightforward dissociation into ions
The equilibrium constant of such a dissociation is called the acid dissociation constant or acidity constant, given by
The concentration of water [H2O] can be taken as constant.
Similarly, for a base, the equilibrium
is also a dissociation; with the base dissociation constant or basicity constant, given by
Ka (Kb) is a measure of the strength of the acid (base).
Newtonian fluid is a fluid whose viscosity does not depend on gradients in flow speed. Gases and low-molecular weight liquids are usually Newtonian fluids.
Nitroso compounds are compounds that contain the nitroso-group (.NO).
Nitrosoamines are carcinogenic compounds that contain nitroso and amino-group in a single molecule.
Non-polar solvent is a liquid with non-polar molecules. It dissolves covalent compounds, non-water solvent.
Nucleophiles are negatively charged or bear a partial negative charge. Examples are lone pairs or a hydroxide ion.
Electron affinity (EA) is the energy change occurring when an atom or molecule gains an electron to form a negative ion. For an atom or molecule X, it is the energy released for the electron-attachment reaction
This is often measured in electronvolts. Alternatively, the molar enthalpy change, ΔH, can be used.
Electronegativity is a parameter originally introduced by L. Pauling which describes, on a relative basis, the power of an atom to attract electrons. For example, in hydrogen chloride, the chlorine atom is more electronegative than the hydrogen and the molecule is polar, with a negative charge on the chlorine atom.
There are various ways of assigning values for the electronegativity of an element. Pauling electronegativities are based on bond dissociation energies using a scale in which fluorine, the most electronegative element, has the value 4 and francium, the lowest electronegative element, has the value 0.7.
Generalic, Eni. "Tetraedarska geometrija molekule." Croatian-English Chemistry Dictionary & Glossary. 29 June 2022. KTF-Split. {Date of access}. <https://glossary.periodni.com>.
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