Chemistry, The Central Science, 11th edition

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Presentation transcript:

Chemistry, The Central Science, 11th edition Theodore L. Brown; H. Eugene LeMay, Jr.; and Bruce E. Bursten Chapter 7 Properties of the elements based on the electronic structure as presented in the Periodic Table © 2009, Prentice-Hall, Inc.

Periodic Trends-Electronic Structure Based In this chapter, we will rationalize observed trends in Sizes of atoms and ions. Ionization energy. Electron affinity. © 2009, Prentice-Hall, Inc.

Effective Nuclear Charge In a many-electron atom, electrons are both attracted to the nucleus and repelled by other electrons. The nuclear charge that an electron experiences depends on both factors. © 2009, Prentice-Hall, Inc.

Effective Nuclear Charge The effective nuclear charge, Zeff, is found this way: Zeff = Z − S where Z is the atomic number and S is a screening constant, usually close to the number of inner electrons. © 2009, Prentice-Hall, Inc.

What Is the Size of an Atom? The bonding atomic radius is defined as one-half of the distance between covalently bonded nuclei. © 2009, Prentice-Hall, Inc.

Sizes of Atoms Bonding atomic radius tends to… …decrease from left to right across a row (due to increasing Zeff). …increase from top to bottom of a column (due to increasing value of n). © 2009, Prentice-Hall, Inc.

Sizes of Ions Ionic size depends upon: The nuclear charge. The number of electrons. The orbitals in which electrons reside. © 2009, Prentice-Hall, Inc.

Sizes of Ions Cations are smaller than their parent atoms. The outermost electron is removed and repulsions between electrons are reduced. © 2009, Prentice-Hall, Inc.

Sizes of Ions Anions are larger than their parent atoms. Electrons are added and repulsions between electrons are increased. © 2009, Prentice-Hall, Inc.

Sizes of Ions Ions increase in size as you go down a column. This is due to increasing value of n. © 2009, Prentice-Hall, Inc.

Sizes of Ions In an isoelectronic series, ions have the same number of electrons. Ionic size decreases with an increasing nuclear charge. © 2009, Prentice-Hall, Inc.

Ionization Energy The ionization energy is the amount of energy required to remove an electron from the ground state of a gaseous atom or ion. The first ionization energy is that energy required to remove first electron. The second ionization energy is that energy required to remove second electron, etc. © 2009, Prentice-Hall, Inc.

Ionization Energy It requires more energy to remove each successive electron. When all valence electrons have been removed, the ionization energy takes a quantum leap. © 2009, Prentice-Hall, Inc.

Trends in First Ionization Energies As one goes down a column, less energy is required to remove the first electron. For atoms in the same group, Zeff is essentially the same, but the valence electrons are farther from the nucleus. © 2009, Prentice-Hall, Inc.

Trends in First Ionization Energies Generally, as one goes across a row, it gets harder to remove an electron. As you go from left to right, Zeff increases. © 2009, Prentice-Hall, Inc.

Trends in First Ionization Energies However, there are two apparent discontinuities in this trend. © 2009, Prentice-Hall, Inc.

Trends in First Ionization Energies The first occurs between Groups IIA and IIIA. In this case the electron is removed from a p-orbital rather than an s-orbital. The electron removed is farther from nucleus. There is also a small amount of repulsion by the s electrons. © 2009, Prentice-Hall, Inc.

Trends in First Ionization Energies The second occurs between Groups VA and VIA. The electron removed comes from doubly occupied orbital. Repulsion from the other electron in the orbital aids in its removal. © 2009, Prentice-Hall, Inc.

Electron Affinity Electron affinity is the energy change accompanying the addition of an electron to a gaseous atom: Cl + e−  Cl− © 2009, Prentice-Hall, Inc.

Trends in Electron Affinity In general, electron affinity becomes more exothermic as you go from left to right across a row. © 2009, Prentice-Hall, Inc.

Trends in Electron Affinity There are again, however, two discontinuities in this trend. © 2009, Prentice-Hall, Inc.

Trends in Electron Affinity The first occurs between Groups IA and IIA. The added electron must go in a p-orbital, not an s-orbital. The electron is farther from nucleus and feels repulsion from the s-electrons. © 2009, Prentice-Hall, Inc.

Trends in Electron Affinity The second occurs between Groups IVA and VA. Group VA has no empty orbitals. The extra electron must go into an already occupied orbital, creating repulsion. © 2009, Prentice-Hall, Inc.

Properties of Metals, Nonmetals, and Metalloids © 2009, Prentice-Hall, Inc.

Metals versus Nonmetals Differences between metals and nonmetals tend to revolve around these properties. © 2009, Prentice-Hall, Inc.

Metals versus Nonmetals Metals tend to form cations. Nonmetals tend to form anions. © 2009, Prentice-Hall, Inc.