Photo AI

5. (a) Define an atomic orbital - Leaving Cert Chemistry - Question 5 - 2017

Question icon

Question 5

5.-(a)-Define-an-atomic-orbital-Leaving Cert Chemistry-Question 5-2017.png

5. (a) Define an atomic orbital. Write the ground states 1s, 2p electron configuration for a carbon atom. How many orbitals are occupied? (b) Why is it difficult t... show full transcript

Worked Solution & Example Answer:5. (a) Define an atomic orbital - Leaving Cert Chemistry - Question 5 - 2017

Step 1

Define an atomic orbital.

96%

114 rated

Answer

An atomic orbital is defined as the region in space around the nucleus of an atom where there is a high probability of finding an electron. This region can be described using quantum mechanics, particularly the Schrödinger wave equation, which leads to specific solutions representing the behavior of electrons.

Step 2

Write the ground states 1s, 2p electron configuration for a carbon atom.

99%

104 rated

Answer

The electron configuration of a carbon atom in its ground state is:

1s² 2s² 2p².

This indicates that the carbon atom has two electrons in the first shell (1s), two electrons in the second shell (2s), and two electrons in the 2p subshell.

Step 3

How many orbitals are occupied?

96%

101 rated

Answer

There are a total of 4 orbitals occupied in a carbon atom:

  • 1s has 1 orbital.
  • 2s has 1 orbital.
  • 2p has 3 orbitals, but only 2 are filled.

Thus, 1 (1s) + 1 (2s) + 2 (in 2p) = 4 occupied orbitals.

Step 4

Why is it difficult to specify the absolute boundary of an atom?

98%

120 rated

Answer

It is difficult to specify the absolute boundary of an atom due to Heisenberg's uncertainty principle, which states that it is impossible to accurately measure both the position and momentum of an electron simultaneously. Additionally, the behavior of electrons is described by wave functions that vary in probability rather than define a fixed boundary. Thus, describing an atom's boundary becomes more about understanding regions of probability rather than precise locations.

Step 5

State the definition used for the (covalent) radius of an atom.

97%

117 rated

Answer

The covalent radius of an atom is defined as the distance between the nuclei of two atoms of the same element that are bonded together by a single covalent bond, divided by two. This provides an estimate of the size of the atom when it forms a covalent bond.

Step 6

Describe and account for the general trend in (covalent) radii down Group 1 of the periodic table.

97%

121 rated

Answer

The covalent radii generally increase down Group 1 of the periodic table. This increase can be accounted for by noting that each successive element adds a new electron shell, which increases the effective shell number. As the atomic number increases, the inner electron shells shield outer electrons, reducing the effective nuclear charge experienced by the outermost electrons. Thus, the atomic size increases, leading to larger covalent radii.

Step 7

Define the first ionisation energy of an isolated atom of an element in its ground state.

96%

114 rated

Answer

The first ionisation energy is defined as the amount of energy required to remove the most loosely bound electron from a neutral atom in its gaseous state to form a cation.

Step 8

Why do first ionisation energy values show a general increase across the second period of the periodic table?

99%

104 rated

Answer

First ionisation energy values generally increase across the second period of the periodic table due to the increase in effective nuclear charge as protons are added to the nucleus. This results in a stronger attraction between the positively charged nucleus and the negatively charged electrons, making it more difficult to remove an electron and thus requiring more energy.

Step 9

Show the data in this table of numbers provide below.

96%

101 rated

Answer

The table of successive ionisation energies for carbon is as follows:

Ionisation LevelIonisation Energy (kJ mol⁻¹)
11086
22335
34620
46223
537831
642727

Step 10

the number of electrons in each main energy level in a carbon atom?

98%

120 rated

Answer

In a carbon atom, the distribution of electrons among the main energy levels is as follows:

  • First energy level (n=1): 2 electrons (1s²)
  • Second energy level (n=2): 4 electrons (2s² 2p²)

Thus, there are 2 electrons in the first energy level and 4 in the second energy level.

Join the Leaving Cert students using SimpleStudy...

97% of Students

Report Improved Results

98% of Students

Recommend to friends

100,000+

Students Supported

1 Million+

Questions answered

;