Electron Configuration Flashcards

1
Q

What does electron configuration show

A

Shoes the arrangement of electrons in the atom of an element

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2
Q

List the energy levels

A

4f
4d
4p
3d
4s
3p
3s
2p
2s
1s

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3
Q

How many electrons can the S orbital hold

A

2

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4
Q

How many electrons can the P orbital hold

A

6

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5
Q

How many electrons can the d orbital hold

A

10

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6
Q

What is the Aufbau principle

A

When building up the electrons configuration of an atom in its ground state, electrons occupy the lowest available energy level where possible

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7
Q

What is the Hunds rule of multiplicity

A

States that when two or more orbitals of equal energy are available, the electrons occupy them singly before filling them in pairs

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8
Q

What is the Pauli exclusion principle

A

States that no more than two electrons can occupy an orbital and they must have opposite signs

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9
Q

Why are Cu and Cr different

A

They both have only one electron in the S orbital because the d block is more stable when half or completely filled

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10
Q

periodic table divided into what four blockes

A

S block, P block,D block,F block

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11
Q

What determines a elements place in a block

A

All the elements in the s block have their outer electrons in a s sub level, all those in the P block have their outer elements in a P orbital

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12
Q

What is the outer shell called

A

Valence shell

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13
Q

Why does the electrons of Cr and Cu start filling up the 3d orbital before the 4s orbital is full?

A

This is because if an orbital is excatly half filled or completely filled then it gives the atom extra stability

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14
Q

What is a ion

A

A charged atom

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15
Q

What elements are an expection to the Albafu principle

A

Cr and Cu

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16
Q

What is an atomic orbit

A

Bohr believed that electrons moved around the nucleus in fixed paths called orbits

17
Q

What is atomic orbital

A

The region of space where there is a high possibility of finding an electron