Chapter 4: Periodic Trends of the Elements Flashcards

1
Q

What are the main group elements?

A

(representative elements) Group 1A through 7A

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2
Q

What are the transition metals located?

A

Groups 1B and 3B through 8B.

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3
Q

What are the noble gases?

A

8A. They are completely filled p orbitals.

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4
Q

What are lanthanides and actinides considered?

A

The F block

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5
Q

What is valence electron?

A

outermost electrons of an atom

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6
Q

What is effective charge (zeff)?

A

the actual magnitude of positively charged that is “experienced” by an electron in the atom.

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7
Q

What is the shielding constant?

A

sigma

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8
Q

What is the symbol for nuclear charge?

A

Z

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9
Q

What happens from left to right?

A

Z(eff) increases steadily b/c the core electrons remain the same but Z increases.

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10
Q

What is the Atomic Radius?

A

The distance between nucleus and atom and its valance shell.

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11
Q

What is the metallic Radius?

A

Half the distance between the nuclei of two adjacent, identical metal atoms.

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12
Q

What is the covalent radius?

A

Half the distance between adjacent, identical nuclei connected by a chemical bond.

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13
Q

Does Atomic radius increases from top to bottom down a group?

A

YES

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14
Q

Does Atomic Radius decreases from left to right?

A

YES

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15
Q

What is Ionization energy? (IE)

A

the main energy to remove an electron from an atom in gas phase.

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16
Q

Does IE generally increase from L to right?

A

YES

17
Q

Does IE generally decrease from top to bottom?

A

YES

18
Q

What is the result of Ionization energy?

A

an ion, a chemical species with a net charge.

19
Q

Electron Affinity (EA)

A

Energy released when an atom in the gas phase accepts an electron.

20
Q

Does EA increase across period?

A

YES

HAS A HIGHER Z(eff)

21
Q

Does EA decrease down the period table?

A

YES

DUE TO SHEILDING