Periodic Table and Periodicity. Dmitri Mendeleev “The elements, if arranged according to their...

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Periodic Table and Periodicity

Transcript of Periodic Table and Periodicity. Dmitri Mendeleev “The elements, if arranged according to their...

Periodic Table and Periodicity

Dmitri Mendeleev

“The elements, if arranged according to their atomic weights, exhibit an apparent periodicity of properties.”

I. History

• A. Dimitri Mendeleev, 1869

• B. Moseley, 1914 – periodic law: The chemical and physical

properties of the elements are periodic functions of their atomic numbers; When the elements are arranged in order of increasing atomic number, there is a periodic repetition of their properties.

II. Structure/Organization• A. Periodic table

– Periods

– Groups or familiesValence electrons

• C. Nonmetals- Halogens- Noble gases

• B. Metals - Alkali metals

- Alkaline earth metals - Transition metals - Inner transition metals

- Representative elements

• D. Semimetals/metalloids

Compare properties of metals and nonmetals

III. Periodicity in properties • A. Ionization

energy

Ionization Potential/EnergyIE: Energy required to remove e-

Higher the IE: more difficult to remove e-

Across PeriodIE INCREASES* as the number of protons increases

* with decrease @ each subshellWhy? (effective nuclear charge)

Down GroupIE DECREASES as the number of shells

increasesWhy? (shielding, effective nuclear charge)

• B.Electronegativity

Electronegativity

The ability to attract e-

Across PeriodEN INCREASESBecause nuclear charge (# p+) increases

Down GroupEN DECREASESBecause more shells (n), more shielding, e- further away from nucleus

•C. Atomic/ionic radius

Atomic Radius

Across PeriodAtomic size DECREASES!Because nuclear charge (# p+) increases, as e- are added to same shell (n), pulls e- in tighter

Down GroupAtomic size INCREASESBecause more n (shells), more shielding,

e- further away from nucleus

Ionic

Ionic Radius

IonCharged atom

CationPositive (+) ion (neutral atom looses e-)

AnionNegative (-) ion (neutral atom gains e-)

IsoelectronicSame electron structure

Ionic Radius

Across Period

IR DECREASES* (why?)

* with jump up in size @ metalloids!

Down Group

IR INCREASES

Compare to neutral atom

Valence e- are the outermost e- of an atom

D. Metallic character/nonmetallic character

Metallic CharacterIncreases

Nonmetallic character increases

Metallic Properties

Across Period

Metallic Properties DECREASES

Down Group

Metallic Properties INCREASES

Summary of Periodic Table Trends

• Moving Left --> Right • Atomic Radius Decreases • Ionization Energy Increases • Electronegativity Increases• Metallic character decreases • Moving Top --> Bottom • Atomic Radius Increases • Ionization Energy Decreases • Electronegativity Decreases • Metallic character increases