The subscript applies to the chemical symbol or grouped species immediately before it. In Ca(OH)₂, the ₂ applies to the entire hydroxide group, so the formula contains two oxygen atoms and two hydrogen atoms. Recognizing the scope of a subscript prevents incorrect atom counts when formulas contain groups enclosed in parentheses.
Subscripts are fixed parts of a substance’s chemical formula, so changing one changes the compound or ion being represented. Balancing instead uses coefficients placed before formulas to adjust the number of particles while preserving each substance’s identity. This distinction allows an equation to show the correct stoichiometric relationship without converting reactants or products into different substances.
Changing the number of atoms represented by a subscript changes the composition of the substance, which can distinguish one compound from another. Because subscripts are part of chemical identity, formulas with different atom ratios do not simply represent different amounts of the same material. Accurate reading therefore supports correct interpretation of a compound’s chemical properties.
First, inspect each chemical symbol and note its subscript; a missing subscript represents one atom of that symbol. Next, identify any parenthesized group and apply its outside subscript to every symbol within the group. For example, Ca(OH)₂ contains one calcium atom, two oxygen atoms, and two hydrogen atoms, giving the formula’s complete composition.
Subscripts supply the atom counts needed to determine a compound’s composition before its molar mass is calculated. Each element contributes according to how many atoms the formula specifies, while a grouped species contributes all of its atoms according to the outside subscript. Misreading either value produces an incorrect total and therefore an incorrect molar mass.
Subscripts identify the fixed atom or ion ratios within each chemical formula, providing the composition needed for stoichiometric calculations. They help chemists relate the amounts of elements, ions, or groups represented in a substance, while coefficients describe the quantities of substances in a balanced equation. Keeping these roles separate supports accurate quantitative interpretation of reactions.