Ionization energy is the energy required to remove the losely bounded electron from an isolated gaseous atom of an element, so if an electron is more attracted towards nucleus it will require higher energy. On increasing size of an atom the electrons fall distant from the nucleus and will observe less effective nuclear energy hence less amount of energy will be required to remove them.
On moving down the group, the size of elements increases hence effective nuclear charge will decrease thus ionization energy will decrease.
Elements at the bottom of the periodic table have lower ionization energies compared to their group or family partners at the top of the periodic table because, they have more energy levels.
Ionization energy decreases down the group as less energy is required to remove outer most electrons as energy levels increases.
Keywords: Ionization energy, periodic table, energy levels, electrons
Level: High school
Subject: Chemistry
Topic: Periodic table and chemical families
Sub-topic: Ionization energy
11. Consider the elements neon, bromine, and phosphorus. Which has five electrons in its 4p sublevel?
B. metallic bonding
C. ionic bonding
D. dipole forces
E. van der Waals forces (London dispersion forces)
Answer: I think its a hydrogen bonding
Explanation:
Answer: a reactant
Explanation: online physics class
Answer:2CO (g) + O2 (g) 2CO2 (g)This Equation Means That No Matter How Much Carbon Monoxide And Oxygen ... Question: 2CO (g) + O2 (g) 2CO2 (g)This Equation Means That No Matter How Much Carbon Monoxide And Oxygen Gas Is Added To The Flask, Only 2 Moles Of CO And 1 Mole Of O2 Will React To Make Two Moles Of Co2.What Is Wrong With This Statement?
Explanation: