All of the substances listed here are fertilizers that contribute nitrogen to the soil. Which of these is the richest source of nitrogen on a mass percentage basis? (a) Urea, (NH 2 ) 2 CO (b) Ammonium nitrate, NH 4 NO 3 (c) Guanidine, HNC(NH 2 ) 2 (d) Ammonia, NH 3
All of the substances listed here are fertilizers that contribute nitrogen to the soil. Which of these is the richest source of nitrogen on a mass percentage basis? (a) Urea, (NH 2 ) 2 CO (b) Ammonium nitrate, NH 4 NO 3 (c) Guanidine, HNC(NH 2 ) 2 (d) Ammonia, NH 3
All of the substances listed here are fertilizers that contribute nitrogen to the soil. Which of these is the richest source of nitrogen on a mass percentage basis?
(a) Urea, (NH2)2CO
(b) Ammonium nitrate, NH4NO3
(c) Guanidine, HNC(NH2)2
(d) Ammonia, NH3
(a)
Expert Solution
Interpretation Introduction
Interpretation: Based on mass percentage the richest source of nitrogen has to be identified from the given fertilizers.
Concept introduction: The mass percentage of each elements present in a compound is known as the percent composition by mass of the compound.
To determine: The percentage mass of nitrogen in urea.
Answer to Problem 3.40QP
The richest source of nitrogen by mass is ammonia (NH3)
percentagemassofNinammonia=82.2447%
Explanation of Solution
Molecular mass of urea is calculated as follows:
Molecularformulaofureais(NH2)2CO
Molecular mass of urea=((2×massofN)+(4×massofH)+massofC+massofO)amu=((2×14.0067)+(4×1.00794)+12.0107+15.9994)amu=(28.0134+4.03176+12.0107+15.9994)amu=60.05526amu The molecular mass of urea was calculated by the sum atomic masses nitrogen, hydrogen, carbon and oxygen atoms.
The percentage mass of nitrogen in ammonia is calculated as follows:
To determine: The percentage mass of nitrogen in ammonium nitrate.
Explanation of Solution
The molecular mass of ammonium nitrate is calculated as follows:
molecular formula of ammonium nitrate is(NH4NO3)
Molecular mass of Ammonium nitrate=((2×massofN)+(4×massofH)+(3×massofO))amu=((2×14.0067)+(4×1.00794)+(3×15.9994))amu=(28.0134+4.03176+47.9982)amu=80.0434amu
The molecular mass of ammonium nitrate was calculated by the sum of atomic masses of nitrogen, hydrogen and oxygen atoms.
The percentage mass of nitrogen in ammonium nitrate is calculated as follows:
To determine: The percentage mass of nitrogen in urea.
Explanation of Solution
Molecular mass of guanidine is calculated as follows:
Molecularformulaofureais (HNC(NH2)2)
Molecular mass of Guanidine=((3×massofN)+(5×massofH)+(1×massofC))amu=((3×14.0067)+(5×1.00794)+12.0107)amu=(42.0201+5.0397+12.0107)amu=59.0705amu The molecular mass of guanidine was calculated by the sum atomic masses nitrogen, hydrogen, and carbon atoms.
The percentage mass of nitrogen in guanidine is calculated as follows:
Predict the major organic product(s) of the following reactions. Indicate which of the following mechanisms is in operation: SN1, SN2, E1, or E2.
(c)
(4pts)
Mechanism:
heat
(E1)
CH3OH
+
1.5pts each
_E1 _ (1pt)
Br
CH3OH
(d)
(4pts)
Mechanism:
SN1
(1pt)
(e)
(3pts)
1111 I
H
10
Ill!!
H
LDA
THF (solvent)
Mechanism: E2
(1pt)
NC
(f)
Bri!!!!!
CH3
NaCN
(3pts)
acetone
Mechanism: SN2
(1pt)
(SN1)
-OCH3
OCH3
1.5pts each
2pts for either product
1pt if incorrect
stereochemistry
H
Br
(g)
“,、
(3pts)
H
CH3OH
+21
Mechanism:
SN2
(1pt)
H
CH3
2pts
1pt if incorrect
stereochemistry
H
2pts
1pt if incorrect
stereochemistry
A mixture of butyl acrylate and 4'-chloropropiophenone has been taken for proton NMR analysis. Based on this proton NMR, determine the relative percentage of each compound in the mixture
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