(a) Interpretation: The element having the smaller molar mass needs to be determined. Concept introduction: The number of moles of an atom of element is related to mass and molar mass as follows: n = m M Here, m is mass of atom of element in grams and M is molar mass in grams/mol. In 1 mol of an element the number of atoms is 6.023 × 10 23 and mass of 1 mol of an element is molar mass thus, mass of 6.023 × 10 23 of element is molar mass.
(a) Interpretation: The element having the smaller molar mass needs to be determined. Concept introduction: The number of moles of an atom of element is related to mass and molar mass as follows: n = m M Here, m is mass of atom of element in grams and M is molar mass in grams/mol. In 1 mol of an element the number of atoms is 6.023 × 10 23 and mass of 1 mol of an element is molar mass thus, mass of 6.023 × 10 23 of element is molar mass.
Solution Summary: The author explains that the number of moles of an atom of element is related to mass and molar mass as follows:
The element having the smaller molar mass needs to be determined.
Concept introduction:
The number of moles of an atom of element is related to mass and molar mass as follows:
n=mM
Here, m is mass of atom of element in grams and M is molar mass in grams/mol.
In 1 mol of an element the number of atoms is 6.023×1023 and mass of 1 mol of an element is molar mass thus, mass of 6.023×1023 of element is molar mass.
Interpretation Introduction
(b)
Interpretation:
The element with more atoms per gram needs to be determined.
Concept introduction:
The number of moles of an atom of element is related to mass and molar mass as follows:
n=mM
Here, m is mass of atom of element in grams and M is molar mass in grams/mol.
In 1 mol of an element the number of atoms is 6.023×1023 and mass of 1 mol of an element is molar mass thus, mass of 6.023×1023 of element is molar mass.
Interpretation Introduction
(c)
Interpretation:
The element with more atoms/gram needs to be calculated.
Concept introduction:
The number of moles of an atom of element is related to mass and molar mass as follows:
n=mM
Here, m is mass of atom of element in grams and M is molar mass in grams/mol.
In 1 mol of an element the number of atoms is 6.023×1023 and mass of 1 mol of an element is molar mass thus, mass of 6.023×1023 of element is molar mass.
Interpretation Introduction
(d)
Interpretation:
The element with more atoms per mole needs to be determined.
Concept introduction:
The number of moles of an atom of element is related to mass and molar mass as follows:
n=mM
Here, m is mass of atom of element in grams and M is molar mass in grams/mol.
In 1 mol of an element the number of atoms is 6.023×1023 and mass of 1 mol of an element is molar mass thus, mass of 6.023×1023 of element is molar mass.
3. Consider the compounds below and determine if they are aromatic, antiaromatic, or
non-aromatic. In case of aromatic or anti-aromatic, please indicate number of I
electrons in the respective systems. (Hint: 1. Not all lone pair electrons were explicitly
drawn and you should be able to tell that the bonding electrons and lone pair electrons
should reside in which hybridized atomic orbital 2. You should consider ring strain-
flexibility and steric repulsion that facilitates adoption of aromaticity or avoidance of anti-
aromaticity)
H H
N
N:
NH2
N
Aromaticity
(Circle)
Aromatic Aromatic Aromatic Aromatic Aromatic
Antiaromatic Antiaromatic Antiaromatic Antiaromatic Antiaromatic
nonaromatic nonaromatic nonaromatic nonaromatic nonaromatic
aromatic TT
electrons
Me
H
Me
Aromaticity
(Circle)
Aromatic Aromatic Aromatic
Aromatic Aromatic
Antiaromatic Antiaromatic Antiaromatic Antiaromatic Antiaromatic
nonaromatic nonaromatic nonaromatic nonaromatic nonaromatic
aromatic πT
electrons
H
HH…