Q.Energy of an electron in the ground state of the hydrogen atom is J. Calculate the ionization enthalpy of atomic hydrogen in terms of J mol. (Hint: Apply the idea of mole concept to derive the answer.)
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Start your 14-day free trial to unlock the full solution →Ionization enthalpy is the energy needed to remove one mole of electrons from one mole of gaseous atoms in their ground state. Multiply the single-atom ionization energy by Avogadro's number to get .
Why the mole concept matters here
The ground-state energy you're given, J, describes one hydrogen atom. The negative sign tells us the electron is bound to the nucleus—it sits in a potential well J below the reference state (a free electron infinitely far from the proton, defined as zero energy).
Ionization means pulling that electron completely out of the atom's grip, taking it from J to J. The energy input required for this process is the ionization energy. For a single atom, that's simply J.
But chemistry deals with macroscopic quantities. When we talk about ionization enthalpy in thermodynamics or compare it across the periodic table, we always quote it per mole of atoms. That's where Avogadro's number bridges the atomic and molar scales.
Step-by-step calculation
- Identify the ionization energy for one atom. The electron in the ground state has energy J. To ionize it (move it to ), we must supply:
- Scale up to one mole of hydrogen atoms. One mole contains atoms (Avogadro's number). If each atom requires J, then one mole requires:
- Perform the multiplication.
Rounding to three significant figures (matching the precision of the given energy):
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