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Published byJodie Joseph Modified over 9 years ago
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Periodic Trends
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Atomic Radius
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Defined as half the distance between the nuclei of two atoms Going across the periodic table ◦ But why are they smaller towards the right?
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Electron Shielding Shielding electrons _____________________________ They “shield” the valence electrons from the _______________from the nucleus As you add electrons across a period, they are added to the SAME energy level, ______________________________ The increased nuclear charge is able to _______________________________ _______________________________
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Atomic Radius Going down a group
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Ionic Radius Ion – Atoms lose electrons to become Atoms gain electrons to become
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Ionic Radius Positive ions ◦ Always become __________ ◦ The lost electron(s) is the valence level ________________ ________________ Negative ions ◦ Always become ______________ ◦ Addition of electrons increases repulsion.
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Ionic Radius
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Ionization Energy
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The energy required to remove an electron from an atom
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Ionization Energy Increases across the periodic table Decreases as you go down the periodic table
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Ionization Energies
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Electronegativity
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Electronegativity The ability of an atom to attract an electron from another atom. On a scale from.79 to 3.98 Pauling’s
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Electronegativity Increases across the periodic table Decreases as you go down the periodic table
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