
(a)
Interpretation:
The number of carbon atoms present in Formic acid has to be given.
Concept Introduction:
In
Common name for monocarboxylic acid is formed by taking Greek or Latin root name for the number of carbon atom that is appended by suffix “ic acid”
(b)
Interpretation:
The number of carbon atoms present in Caproic acid has to be given.
Concept Introduction:
In organic chemistry compounds are given common names also apart from IUPAC names. Common names are derived from the Greek-letter system. This is used in numbering of the carbon atoms in a carbon chain. Common names are also derived from the Greek or Latin word that represents the source of the acid.
Common name for monocarboxylic acid is formed by taking Greek or Latin root name for the number of carbon atom that is appended by suffix “ic acid”
(c)
Interpretation:
The number of carbon atoms present in Succinic acid has to be given.
Concept Introduction:
In organic chemistry compounds are given common names also apart from IUPAC names. Common names are derived from the Greek-letter system. This is used in numbering of the carbon atoms in a carbon chain. Common names are also derived from the Greek or Latin word that represents the source of the acid.
Common name for monocarboxylic acid is formed by taking Greek or Latin root name for the number of carbon atom that is appended by suffix “ic acid”
(d)
Interpretation:
The number of carbon atoms present in Malonic acid has to be given.
Concept Introduction:
In organic chemistry compounds are given common names also apart from IUPAC names. Common names are derived from the Greek-letter system. This is used in numbering of the carbon atoms in a carbon chain. Common names are also derived from the Greek or Latin word that represents the source of the acid.
Common name for monocarboxylic acid is formed by taking Greek or Latin root name for the number of carbon atom that is appended by suffix “ic acid”

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Chapter 16 Solutions
GENERAL,ORGANIC,+BIO.CHEM.-MINDTAP
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- The quantum yield of the photochemical decay of HI is 2. Calculating the moles of HI per kJ of radiant energy can be decayed knowing that the energy absorbed per mole of photons is 490 kJ.arrow_forwardThe quantum yield of the photochemical decay of HI is 2. Calculate the number of Einsteins absorbed per mole knowing that the energy absorbed per mole of photons is 490 kJ.arrow_forwardThe quantum yield of the photochemical decay of HI is 2. How many moles of HI per kJ of radiant energy can be decayed knowing that the energy absorbed per mole of photons is 490 kJ.arrow_forward
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