8.1 Characteristics of Many-Electron Atoms Flashcards

1
Q

aufbau principle

A

start at the beginning of the periodic table and add one proton to the nucleus and one electron to the lowest energy sublevel available

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2
Q

electron configuration

A

consists of the principal energy level (n value), the letter designation of the sublevel (l values), and the number of electrons (#) in the sublevel; nl^#

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3
Q

the orbital diagram

A

consists of a box, circle, line, etc., for each orbital in a given energy level, grouped by sublevel (with nl designation shown beneath), w/ an arrow representing an electron and its spin (+ or - 1/2)

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4
Q

Hund’s Rule

A

when orbitals of equal energy are available, the electron configuration of lowest energy has the maximum of unpaired electrons with parallel spins

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5
Q

Transition series and stability rules

A
  • Cr has ONE electron in the 4s sublevel, and FIVE in the 3d sublevel, making both sublevels half filled
  • Cu has ONE electron in the 4s sublevel, and TEN in the 3d subleve, making one half filled and one filled sublevel
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6
Q

inner (core) electrons

A

those an atom has in common w/ the previous nobel gas and any completed transition series (fill lower energy levels of an atom)

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7
Q

outer electrons

A

those in the highest energy level (highest n value) and spend most of their time farthest from the nucleus

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8
Q

valence

A

those involved in forming compounds:

  • for main-group elements, valence electron’s are the outer electrons
  • for transition elements & outer ns electrons, the (n-1)d electrons are also valence electrons
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