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(a) What is the mass, in grams, of 1.223 mol of iron(III) sulfate? (b) How many moles of ammonium ions are in 6.955 g of ammonium carbonate? (c) What is the mass, in grams, of 1.50×1021 molecules of aspirin, C9H8O4? (d) What is the molar mass of diazepam (Valium ) if 0.05570 mol has a mass of 15.86 g ?

Short Answer

Expert verified
(a) The mass of $1.223\, \text{mol}$ of iron(III) sulfate is 399.95g. (b) There are 0.2688mol of ammonium ions in $6.955\, \text{g}$ of ammonium carbonate. (c) The mass of $1.50 \times 10^{21}$ molecules of aspirin is 6.009g. (d) The molar mass of diazepam is 284.8g/mol.

Step by step solution

01

Find the molar mass of iron(III) sulfate

To find the mass of iron(III) sulfate, we first need to find its molar mass. Iron(III) sulfate has the chemical formula Fe2(SO4)3. It consists of two Fe atoms, three SO4 units, totaling nine O atoms and three S atoms. To calculate the molar mass of Iron(III) sulfate, multiply the number of atoms of each element by their atomic weights and sum them: Molarmass=2×(molarmassofFe)+3×[4×(molarmassofO)+(molarmassofS)]
02

Calculate the mass of iron(III) sulfate

To calculate the mass of iron(III) sulfate, multiply the given moles by its molar mass: Mass=Moles×Molarmass #Problem (b)#
03

Obtain the molar mass of ammonium carbonate and calculate moles

Ammonium carbonate has the formula (NH4)2CO3. To calculate the required moles of ammonium ions, first, we find the molar mass of ammonium carbonate and then find the moles of the compound: Moles=MassMolarmass Finally, we can determine the moles of ammonium ions in the given mass of ammonium carbonate. #Problem (c)#
04

Find the molar mass of aspirin

Aspirin has the chemical formula C9H8O4. To find the molar mass of aspirin, we multiply the number of atoms of each element by their atomic weights and sum them: Molarmassofaspirin=9×(molarmassofC)+8×(molarmassofH)+4×(molarmassofO)
05

Calculate the number of moles and mass of aspirin

First, we need to determine the number of moles to calculate the mass of aspirin: Numberofmoles=NumberofparticlesAvogadrosnumber Once we have the number of moles, we can find the mass of aspirin using the following formula: Mass=Moles×Molarmass #Problem (d)#
06

Calculate the molar mass of diazepam

For diazepam, we are given the mass and the number of moles. We can simply find the molar mass using the formula: Molarmass=MassMoles

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Most popular questions from this chapter

At least 25μg of tetrahydrocannabinol (THC), the active ingredient in marijuana, is required to produce intoxication. The molecular formula of THC is C21H30O2. How many moles of THC does this 25μg represent? How many molecules?

A sample of glucose, C6H12O6, contains 1.250×1021 carbon atoms. (a) How many atoms of hydrogen does it contain? (b) How many molecules of glucose does it contain? (c) How many moles of glucose does it contain? (d) What is the mass of this sample in grams?

Calculate the following quantities: (a) mass, in grams, of 0.105 mole of sucrose (C12H22O11) (b) moles of Zn(NO3)2 in 143.50 g of this substance (c) number of molecules in 1.0×106 molCH3CH2OH (d) number of N atoms in 0.410 molNH3

The source of oxygen that drives the internal combustion engine in an automobile is air. Air is a mixture of gases, principally N2(79%) and O2(20%). In the cylinder of an automobile engine, nitrogen can react with oxygen to produce nitric oxide gas, NO. As NO is emitted from the tailpipe of the car, it can react with more oxygen to produce nitrogen dioxide gas. (a) Write balanced chemical equations for both reactions. (b) Both nitric oxide and nitrogen dioxide are pollutants that can lead to acid rain and global warming; collectively, they are called " NOx gases. In 2007, the United States emitted an estimated 22 million tons of nitrogen dioxide into the atmosphere. How many grams of nitrogen dioxide is this? (c) The production of NOx gases is an unwanted side reaction of the main engine combustion process that turns octane, C8H18, into CO2 and water. If 85% of the oxygen in an engine is used to combust octane and the remainder used to produce nitrogen dioxide, calculate how many grams of nitrogen dioxide would be produced during the combustion of 500 grams of octane.

Why is it essential to use balanced chemical equations when determining the quantity of a product formed from a given quantity of a reactant?

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