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Vocab Electron Configuration Orbital Notation Electron Dot Misc 100 100 100 100 100 200 200 200 200 200 300 300 300 300 300 400 400 400 400 400 500 500 500 500 500
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Wavelength
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The distance between peaks of a wave
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Valence Electrons
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Electrons in the outer shell involved in bonding
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Principle Quantum Number
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The shell or level that the electron is in
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DAILY DOUBLE!!! Represented by (l). Energy sublevel
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Azimuthal
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Before any second electron can be placed in a sub level, all the orbitals of that sub level must contain at least one electron.
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Hund’s Rule
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What are the 4 metals that are exceptions to the “rules”?
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Cr, Cu, Ag, Au
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Long hand e- configuration for: Bromine
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1s22s22p63s23p63d104s24p5
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What is the “short hand” e- configuration of: W
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[Xe]4f145d46s2
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What element am I…. 1s22s22p63s23p63d54s1
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Chromium
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What is the e- configuration of: Ca2+
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1s22s22p63s23p64s2
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What 3 rules are followed for orbital notation?
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1. Aufbau 2. Hunds 3. Pauli Exclusion
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Draw the “long hand” orbital notation for:
Fluorine
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F 1s 2s 2p
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“Short hand” orbital notation for: Arsenic -3
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[Ar] 3d 4s 4p
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“Short Hand” orbital notation for: silver
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Ag [Kr] 4d 5s
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Daily Double!!!!! __ 1s 2s 2p What rule does this break?
__ 1s s p What rule does this break?
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Hund’s (Bus)
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No atom has more than _____ e-
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8
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If not, give the correct e- dot
Correct or Not? .. . Cr . .. If not, give the correct e- dot
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(Cr is an exception, only 1 valence in 4s)
Incorrect Cr . (Cr is an exception, only 1 valence in 4s)
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Draw the e- dot for Mg+1
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. Mg
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Draw the e- dot for: S2-
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.. .. .. S ..
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Correct or Not? .. :O: If NOT, why??
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Must fill, NSEW
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Draw a full Bohr model of: Chlorine
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Write the “short hand” bohr model for: Na
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Na )2e- )8e- )1e-
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Draw a picture showing how light is produced
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2 of Bohr’s contributions…..
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1. He explained the atomic line spectra in terms of electron energies
2. He introduced the idea of quantized electron energy levels in the atom
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Complete the Chart: Type # sublevels Total # e Shape s p d f
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Type # sublevels Total # e Shape s 1 2 sphere p 3 6 peanut d 5 10 dumbbell f 7 14 flower
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