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Solutions & Colligative Properties

Solvation

The surrounding and stabilisation of a solute particle by a shell of solvent molecules.

kJ/mol
Solutions & Colligative Properties

Solvent

The component of a solution present in the greater amount, which dissolves and disperses the solute.

L
Chemical Equilibrium

Solvent Extraction Equilibrium

The equilibrium established when a solute is transferred between two immiscible liquid phases in a separating funnel.

efficiency = P V₁ / (P V₁ + V₂) Dimensionless
Chemical Bonding & Molecular Structure

sp Hybridisation

The mixing of one s and one p orbital to give two linear hybrid orbitals at 180° to each other.

2 hybrids, 180° degrees
Thermochemistry & Thermodynamics

Specific Heat Capacity

The heat required to raise the temperature of one kilogram of a substance by one kelvin.

c = q / (mΔT) J/(kg·K)
Analytical Chemistry & Spectroscopy

Specificity

The ability of a method to measure the analyte accurately in the presence of everything else in the sample.

Dimensionless
Stoichiometry & Chemical Reactions

Spectator Ion

An ion present in a reaction mixture that undergoes no chemical change and appears identically on both sides of the equation.

Dimensionless
Inorganic & Coordination Chemistry

Spectrochemical Series

A ranking of ligands by the magnitude of the crystal field splitting they produce.

I⁻ < Br⁻ < Cl⁻ < F⁻ < H₂O < NH₃ < en < CN⁻ < CO cm⁻¹
Atomic Structure & Periodicity

Spin Quantum Number

The quantum number mₛ describing the intrinsic angular momentum of an electron, restricted to +½ or −½.

mₛ = ±½ Dimensionless
Analytical Chemistry & Spectroscopy

Spin–Spin Coupling

The splitting of an NMR signal into multiple lines caused by interaction with neighbouring non-equivalent nuclei.

n + 1 rule Hz
Thermochemistry & Thermodynamics

Spontaneity

The tendency of a process to occur without any continuous external input of energy.

ΔG < 0 kJ/mol
Chemical Bonding & Molecular Structure

sp² Hybridisation

The mixing of one s and two p orbitals to give three hybrid orbitals in a plane at 120° to each other.

3 hybrids, 120° degrees
Chemical Bonding & Molecular Structure

sp³ Hybridisation

The mixing of one s and three p orbitals to give four hybrid orbitals directed towards the corners of a tetrahedron.

4 hybrids, 109.5° degrees
Chemical Bonding & Molecular Structure

sp³d and sp³d² Hybridisation

Hybridisation schemes involving d orbitals that give five trigonal bipyramidal or six octahedral hybrid orbitals.

5 or 6 hybrids degrees
Inorganic & Coordination Chemistry

Square Planar Complex

A four-coordinate complex in which the ligands occupy the corners of a square around the metal.

dsp² hybridisation Dimensionless
Chemical Equilibrium

Stability Constant

The equilibrium constant for the formation of a complex ion from its metal ion and ligands.

K = [MLₙ] / ([M][L]ⁿ) Various
Inorganic & Coordination Chemistry

Stability of Complexes

The thermodynamic tendency of a complex to persist rather than dissociate into metal ion and free ligands.

K_stability Various
Analytical Chemistry & Spectroscopy

Standard Deviation

A statistical measure of the spread of a set of repeated measurements about their mean.

s = √(Σ(xᵢ − x̄)² / (n − 1)) Various
Electrochemistry & Redox

Standard Electrode Potential

The potential of a half-cell measured against the standard hydrogen electrode under standard conditions.

E° at 298 K, 1 M, 1 bar V
Thermochemistry & Thermodynamics

Standard Enthalpy of Combustion

The enthalpy change when one mole of a substance burns completely in excess oxygen under standard conditions.

ΔH_c° kJ/mol
Thermochemistry & Thermodynamics

Standard Enthalpy of Formation

The enthalpy change when one mole of a compound forms from its elements in their standard states.

ΔH_f° kJ/mol
Electrochemistry & Redox

Standard Hydrogen Electrode

The reference half-cell, consisting of hydrogen gas at 1 bar bubbled over platinum in 1 M acid, assigned a potential of exactly zero.

2H⁺ + 2e⁻ ⇌ H₂, E° = 0.00 V V
Thermochemistry & Thermodynamics

Standard Molar Entropy

The absolute entropy of one mole of a substance in its standard state at 298 K.

ΔS° = ΣS°(products) − ΣS°(reactants) J/(mol·K)
Thermochemistry & Thermodynamics

Standard State

The reference condition of a pure substance at 1 bar pressure and a stated temperature, conventionally 298.15 K.

denoted by ° Dimensionless