(a)
Interpretation:
Element having smaller first ionization energy has to be identified among
Concept Introduction:
First ionization energy: The ionization energy is the minimum energy required to remove the electron from an isolated atom which is in the gaseous state results to give gaseous ion with one positive charge.
Down the group, generally first ionization energies decreases whereas across the period, first ionization energies typically increases.
(b)
Interpretation:
Element having smaller first ionization energy has to be identified among
Concept Introduction:
Refer to (a).
(c)
Interpretation:
Element having smaller first ionization energy has to be identified among
Concept Introduction:
Refer to (a).
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CHEMICAL PRINCIPLES PKG W/SAPLING
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- Give the ground-state electron configurations of the following elements: (a) P (b) Tc (c) Hoarrow_forwardWhat neutral atoms are isoelectronic with the following ions? (a) Pb4+ (b) Br (c) S2 (d) Ni3+arrow_forwardDoes the information on alkali metals in Table 2-8 of the text confirm the general periodic trends in ionization energy and atomic radius? Explain.arrow_forward
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- Identify each statement as true or false: (a) Cations are largerthan their corresponding neutral atoms. (b) Li+ is smallerthan Li. (c) Cl- is bigger than I-.arrow_forward4. As you move across the periodic table, from left to right, (A) do the atoms get smaller or larger? (B) are the ionization energies increasing or decreasing? (C) are the metals becoming more or less reactive?arrow_forwardThe following equations represent the chemical process to determine electron affinity of atoms. Identify the process expected to be the most exothermic (that releases the most energy). (A) F(g) + e– --> F– (g); (B) Cl(g) + e– --> Cl–(g); (C) Br(g) + e– --> Br–(g) ; (D) I(g) + e– --> I–(g);arrow_forward
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