answersLogoWhite

0

The first ionization energy decreases because the outermost electron is farther from the nucleus.

Apex

User Avatar

Florine Wiza

Lvl 13
3y ago

What else can I help you with?

Related Questions

What trend does the first ionization energy follow going down the periodic?

The first ionization energy decreases because the outermost electron is farther from the nucleus. Apex


What trend does the first ionization energy follow in the periodic?

It decreases when going down a group.


What trend the first ionization energy follow in the periodic table?

It decreases when going down a group.


What trends does the first ionization energy follow going across the periodic table?

The correct answer is: The ionization energy increases because there are more protons to pull on the electrons.


What trend it does the first ionization energy follow going across the periodic table?

The first ionization energy tends to increase across a period from left to right on the periodic table. This is due to the increasing nuclear charge and decreasing atomic radius, which leads to a stronger attraction between the electrons and the nucleus.


How the electronegativity trend related to the first ionization energy trend?

Electronegativity and first ionization energy both increase going up the Periodic Table.


How is the electronegative trend relate to the first ionization energy trend?

Electronegativity and first ionization energy both increase going up the Periodic Table.


How is the electronagativity trend related to the first ionization energy trend?

Electronegativity and first ionization energy both increase as you move up the periodic table


What is ionization energy of boron?

Across a row on the periodic table ionization energy increases. Down a column, ionization energy decreases. --------------------------------------------------------- The first Ionization energy of Boron is 800.6 kJ mol-1


How does the first ionization energy change going down and across the periodic table?

As you move down a group on the periodic table, the first ionization energy generally decreases due to the increasing atomic size and shielding effect of inner electrons. Across a period, the first ionization energy generally increases because the effective nuclear charge increases, making it harder to remove an electron.


What other trend is similar to periodic trend for electronegativity?

The trend for first ionization energy


What happens to the first ionization energy of the elements as a period is crossed?

Moving from left to right across a period, the first ionization energy increases because it becomes increasingly difficult to remove an electron.