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The ionization energy increases going across a periodic table.This is because of increasing nuclear charge.

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

It decreases when going down a group.


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 the first ionization energy follow in the periodic table?

It decreases when going down a group.


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

It decreases when going down a group.


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

The first ionization energy generally increases across a period from left to right on the periodic table. This is due to the increased nuclear charge, leading to stronger attraction between the electrons and the nucleus, making it more difficult to remove an electron.


What elements properties follow a pattern that repeats every?

The properties of elements that follow a pattern that repeats every eight elements are known as the periodic properties. These properties include atomic radius, ionization energy, electron affinity, and electronegativity, which exhibit periodic trends across periods (rows) in the periodic table.


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

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


What elements don't follow the trend for ionization energy?

There are two main elements that do not follow the trend for ionization energy. Those two elements are both Boron and Oxygen.


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

The first ionization energy generally increases across a period from left to right due to increasing nuclear charge and decreasing atomic size. It decreases down a group due to increasing atomic size and shielding effect from inner electrons, making it easier to remove an outer electron.


Why does rubidium not follow the general trend of ionization energy in its group?

I suppose that this trend is normal.