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question 48 (1 point) which of the following factors contributes to the…

Question

question 48 (1 point)
which of the following factors contributes to the increase in ionization energy from left to right across a period?
o a fewer electrons in the highest occupied energy level
b an increase in the size of the nucleus
o c an increase in the shielding effect
d an increase in the number of protons

question 49 (1 point)
as you move from left to right across the second period of the periodic table
a atomic mass decreases.
b ionization energy increases.
o c electronegativity decreases.
d atomic radii increase.

question 50 (1 point)
of the following elements, which one has the smallest first ionization energy?
a aluminum
b silicon
o c boron
d carbon

Explanation:

Brief Explanations
  • Question 48:
  • As we move from left to right across a period, the number of protons in the nucleus increases. This leads to a greater positive charge in the nucleus, which attracts the electrons more strongly. As a result, more energy is required to remove an electron (ionization energy increases).
  • Option a: The number of electrons in the highest - occupied energy level increases across a period (not fewer).
  • Option b: The size of the nucleus (in terms of radius) does not increase significantly in a way that would directly cause an increase in ionization energy across a period. The main factor is the increase in the number of protons (nuclear charge).
  • Option c: The shielding effect (due to inner - shell electrons) remains relatively constant across a period (since the number of inner - shell electrons does not change).
  • Question 49:
  • Option a: Atomic mass generally increases from left to right across a period as the number of protons and neutrons increases.
  • Option b: Ionization energy increases from left to right across a period because of the increasing nuclear charge (more protons) which holds the electrons more tightly.
  • Option c: Electronegativity increases from left to right across a period (not decreases).
  • Option d: Atomic radii decrease from left to right across a period due to the increasing nuclear charge pulling the electrons closer.
  • Question 50:
  • Ionization energy generally increases from left to right across a period.
  • Boron (B), carbon (C), silicon (Si), and aluminum (Al) are in the following order in the periodic table: Boron (period 2, group 13), carbon (period 2, group 14), aluminum (period 3, group 13), silicon (period 3, group 14).
  • Aluminum has a lower ionization energy than silicon (since it is to the left of silicon in the same period). Boron has a higher ionization energy than aluminum because, although boron is in a higher energy level (n = 2 for B, n = 3 for Al), the effect of the increasing nuclear charge in the same group (from Al to B, but B is in a higher period) is less significant than the period - related trend. Carbon has a higher ionization energy than boron (as it is to the right of boron in the same period).

Answer:

  • Question 48: d. an increase in the number of protons
  • Question 49: b. ionization energy increases
  • Question 50: a. aluminum