The diameter of the atom decreases somewhat as electrons are added.
The attractive force of the nucleus increases.
The element in the fifth period with the highest ionization energy is xenon. Ionization energy generally increases across a period from left to right, so xenon, being on the far right of the period, has the highest ionization energy.
Moving from left to right across a period, the first ionization energy increases because it becomes increasingly difficult to remove an electron.
No, arsenic does not have the highest ionization energy. Ionization energy generally increases as you move across a period in the periodic table from left to right. In the case of arsenic, it is found in the 3rd period, so elements to the right of it, such as bromine, have higher ionization energies.
Potassium (K) would have a lower ionization energy compared to Zinc (Zn). This is because the ionization energy generally increases as you move across a period in the periodic table. Since Potassium is located further to the left in the same period as Zinc, it would have a lower ionization energy.
Ionization energy generally increases across a period as a result of a higher nuclear charge, however there are some exceptions such as Boron which has a lower ionization energy than Beryllium (because it is in a P orbital), and Oxygen which has a lower ionization energy than nitrogen (Because ionization decreases the electron electron repulsion in its orbitals).
The element in the fifth period with the highest ionization energy is xenon. Ionization energy generally increases across a period from left to right, so xenon, being on the far right of the period, has the highest ionization energy.
Neon
Ionization energy increases as you go across a period, but as you go down a group it decreases.
Sodium (Na) has the lowest first ionization energy in period 3.
The trend in period 2 ionization energy across the elements increases from left to right.
Moving from left to right across a period, the first ionization energy increases because it becomes increasingly difficult to remove an electron.
No, arsenic does not have the highest ionization energy. Ionization energy generally increases as you move across a period in the periodic table from left to right. In the case of arsenic, it is found in the 3rd period, so elements to the right of it, such as bromine, have higher ionization energies.
Potassium (K) would have a lower ionization energy compared to Zinc (Zn). This is because the ionization energy generally increases as you move across a period in the periodic table. Since Potassium is located further to the left in the same period as Zinc, it would have a lower ionization energy.
The trend in ionization energy of period 3 elements on the periodic table generally increases from left to right.
Ionization energy generally increases across a period as a result of a higher nuclear charge, however there are some exceptions such as Boron which has a lower ionization energy than Beryllium (because it is in a P orbital), and Oxygen which has a lower ionization energy than nitrogen (Because ionization decreases the electron electron repulsion in its orbitals).
The ionization energy is the energy needed to extract an electron from an atom.The value of the ionization energy increase from left to right in a period of the periodic table and decrease in a group from the above to down.
The ionization energy increases across a period because as you move from left to right, the number of protons in the nucleus increases, leading to a stronger attraction between the nucleus and the electrons. This makes it harder to remove an electron, resulting in higher ionization energy.