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3.3: Molarity

  • Page ID
    112766
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     Learning Objectives
    • Describe the fundamental properties of solutions
    • Calculate solution concentrations using molarity
    • Perform dilution calculations using the dilution equation

    In preceding sections, we focused on the composition of substances: samples of matter that contain only one type of element or compound. However, mixtures—samples of matter containing two or more substances physically combined—are more commonly encountered in nature than are pure substances. Similar to a pure substance, the relative composition of a mixture plays an important role in determining its properties. The relative amount of oxygen in a planet’s atmosphere determines its ability to sustain aerobic life. The relative amounts of iron, carbon, nickel, and other elements in steel (a mixture known as an “alloy”) determine its physical strength and resistance to corrosion. The relative amount of the active ingredient in a medicine determines its effectiveness in achieving the desired pharmacological effect. The relative amount of sugar in a beverage determines its sweetness (Figure \(\PageIndex{1}\)). In this section, we will describe one of the most common ways in which the relative compositions of mixtures may be quantified.

    A picture is shown of sugar being poured from a spoon into a cup.
    Figure \(\PageIndex{1}\): Sugar is one of many components in the complex mixture known as coffee. The amount of sugar in a given amount of coffee is an important determinant of the beverage’s sweetness. (credit: Jane Whitney)

    Solutions

    We have previously defined solutions as homogeneous mixtures, meaning that the composition of the mixture (and therefore its properties) is uniform throughout its entire volume. Solutions occur frequently in nature and have also been implemented in many forms of manmade technology. We will explore a more thorough treatment of solution properties in the chapter on solutions and colloids, but here we will introduce some of the basic properties of solutions.

    The relative amount of a given solution component is known as its concentration. Often, though not always, a solution contains one component with a concentration that is significantly greater than that of all other components. This component is called the solvent and may be viewed as the medium in which the other components are dispersed, or dissolved. Solutions in which water is the solvent are, of course, very common on our planet. A solution in which water is the solvent is called an aqueous solution.

    A solute is a component of a solution that is typically present at a much lower concentration than the solvent. Solute concentrations are often described with qualitative terms such as dilute (of relatively low concentration) and concentrated (of relatively high concentration).

    Concentrations may be quantitatively assessed using a wide variety of measurement units, each convenient for particular applications. Molarity (M) is a useful concentration unit for many applications in chemistry. Molarity is defined as the number of moles of solute in exactly 1 liter (1 L) of the solution:

    \[M=\mathrm{\dfrac{mol\: solute}{L\: solution}} \label{3.4.2} \]

    Example \(\PageIndex{1}\): Calculating Molar Concentrations

    A 355-mL soft drink sample contains 0.133 mol of sucrose (table sugar). What is the molar concentration of sucrose in the beverage?

    Solution

    Since the molar amount of solute and the volume of solution are both given, the molarity can be calculated using the definition of molarity. Per this definition, the solution volume must be converted from mL to L:

    \[\begin{align*} M &=\dfrac{mol\: solute}{L\: solution} \\[4pt] &=\dfrac{0.133\:mol}{355\:mL\times \dfrac{1\:L}{1000\:mL}} \\[4pt] &= 0.375\:M \label{3.4.1} \end{align*} \]

    Exercise \(\PageIndex{1}\)

    A teaspoon of table sugar contains about 0.01 mol sucrose. What is the molarity of sucrose if a teaspoon of sugar has been dissolved in a cup of tea with a volume of 200 mL?

    Answer

    0.05 M

    Example \(\PageIndex{2}\): Deriving Moles and Volumes from Molar Concentrations

    How much sugar (mol) is contained in a modest sip (~10 mL) of the soft drink from Example \(\PageIndex{1}\)?

    Solution

    In this case, we can rearrange the definition of molarity to isolate the quantity sought, moles of sugar. We then substitute the value for molarity that we derived in Example 3.4.2, 0.375 M:

    \[M=\mathrm{\dfrac{mol\: solute}{L\: solution}} \label{3.4.3} \]

    \[ \begin{align*} \mathrm{mol\: solute} &= \mathrm{ M\times L\: solution} \label{3.4.4} \\[4pt] \mathrm{mol\: solute} &= \mathrm{0.375\:\dfrac{mol\: sugar}{L}\times \left(10\:mL\times \dfrac{1\:L}{1000\:mL}\right)} &= \mathrm{0.004\:mol\: sugar} \label{3.4.5} \end{align*} \]

    Exercise \(\PageIndex{2}\)

    What volume (mL) of the sweetened tea described in Example \(\PageIndex{1}\) contains the same amount of sugar (mol) as 10 mL of the soft drink in this example?

    Answer

    80 mL

    Example \(\PageIndex{3}\): Calculating Molar Concentrations from the Mass of Solute

    Distilled white vinegar (Figure \(\PageIndex{2}\)) is a solution of acetic acid, \(CH_3CO_2H\), in water. A 0.500-L vinegar solution contains 25.2 g of acetic acid. What is the concentration of the acetic acid solution in units of molarity?

    Figure \(\PageIndex{3}\): Distilled white vinegar is a solution of acetic acid in water.
    A label on a container is shown. The label has a picture of a salad with the words “Distilled White Vinegar,” and, “Reduced with water to 5% acidity,” written above it.
    Solution

    As in previous examples, the definition of molarity is the primary equation used to calculate the quantity sought. In this case, the mass of solute is provided instead of its molar amount, so we must use the solute’s molar mass to obtain the amount of solute in moles:

    \[\mathrm{\mathit M=\dfrac{mol\: solute}{L\: solution}=\dfrac{25.2\: g\: \ce{CH3CO2H}\times \dfrac{1\:mol\: \ce{CH3CO2H}}{60.052\: g\: \ce{CH3CO2H}}}{0.500\: L\: solution}=0.839\: \mathit M} \label{3.4.6} \]

    \[M=\mathrm{\dfrac{0.839\:mol\: solute}{1.00\:L\: solution}} \nonumber \]

    \[\mathrm{\mathit M=\dfrac{mol\: solute}{L\: solution}=0.839\:\mathit M} \label{3.4.7} \]

    Exercise \(\PageIndex{3}\)

    Calculate the molarity of 6.52 g of \(CoCl_2\) (128.9 g/mol) dissolved in an aqueous solution with a total volume of 75.0 mL.

    

    Answer

    0.674 M

    Example \(\PageIndex{4}\): Determining the Mass of Solute in a Given Volume of Solution

    How many grams of NaCl are contained in 0.250 L of a 5.30-M solution?

    Solution

    The volume and molarity of the solution are specified, so the amount (mol) of solute is easily computed as demonstrated in Example \(\PageIndex{3}\):

    \[M=\mathrm{\dfrac{mol\: solute}{L\: solution}} \label{3.4.9} \]

    \[\mathrm{mol\: solute= \mathit M\times L\: solution} \label{3.4.10} \]

    \[\mathrm{mol\: solute=5.30\:\dfrac{mol\: NaCl}{L}\times 0.250\:L=1.325\:mol\: NaCl} \label{3.4.11} \]

    Finally, this molar amount is used to derive the mass of NaCl:

    \[\mathrm{1.325\: mol\: NaCl\times\dfrac{58.44\:g\: NaCl}{mol\: NaCl}=77.4\:g\: NaCl} \label{3.4.12} \]

    Exercise \(\PageIndex{4}\)

    How many grams of \(CaCl_2\) (110.98 g/mol) are contained in 250.0 mL of a 0.200-M solution of calcium chloride?

    Answer

    5.55 g \(CaCl_2\)

    When performing calculations stepwise, as in Example \(\PageIndex{3}\), it is important to refrain from rounding any intermediate calculation results, which can lead to rounding errors in the final result. In Example \(\PageIndex{4}\), the molar amount of NaCl computed in the first step, 1.325 mol, would be properly rounded to 1.32 mol if it were to be reported; however, although the last digit (5) is not significant, it must be retained as a guard digit in the intermediate calculation. If we had not retained this guard digit, the final calculation for the mass of NaCl would have been 77.1 g, a difference of 0.3 g.

    In addition to retaining a guard digit for intermediate calculations, we can also avoid rounding errors by performing computations in a single step (Example \(\PageIndex{5}\)). This eliminates intermediate steps so that only the final result is rounded.

    Example \(\PageIndex{5}\): Determining the Volume of Solution

    In Example \(\PageIndex{3}\), we found the typical concentration of vinegar to be 0.839 M. What volume of vinegar contains 75.6 g of acetic acid?

    Solution

    First, use the molar mass to calculate moles of acetic acid from the given mass:

    \[\mathrm{g\: solute\times\dfrac{mol\: solute}{g\: solute}=mol\: solute} \label{3.4.13} \]

    Then, use the molarity of the solution to calculate the volume of solution containing this molar amount of solute:

    \[\mathrm{mol\: solute\times \dfrac{L\: solution}{mol\: solute}=L\: solution} \label{3.4.14} \]

    Combining these two steps into one yields:

    \[\mathrm{g\: solute\times \dfrac{mol\: solute}{g\: solute}\times \dfrac{L\: solution}{mol\: solute}=L\: solution} \label{3.4.15} \]

    \[\mathrm{75.6\:g\:\ce{CH3CO2H}\left(\dfrac{mol\:\ce{CH3CO2H}}{60.05\:g}\right)\left(\dfrac{L\: solution}{0.839\:mol\:\ce{CH3CO2H}}\right)=1.50\:L\: solution} \label{3.4.16} \]

    Exercise \(\PageIndex{5}\):

    What volume of a 1.50-M KBr solution contains 66.0 g KBr?

    Answer

    0.370 L

     

    Dilution of Solutions

    Dilution is the process whereby the concentration of a solution is lessened by the addition of solvent. For example, we might say that a glass of iced tea becomes increasingly diluted as the ice melts. The water from the melting ice increases the volume of the solvent (water) and the overall volume of the solution (iced tea), thereby reducing the relative concentrations of the solutes that give the beverage its taste (Figure \(\PageIndex{2}\)).

    Figure \(\PageIndex{2}\): Both solutions contain the same mass of copper nitrate. The solution on the right is more dilute because the copper nitrate is dissolved in more solvent. (credit: Mark Ott).
    This figure shows two graduated cylinders side-by-side. The first has about half as much blue liquid as the second. The blue liquid is darker in the first cylinder than in the second.

    Dilution is also a common means of preparing solutions of a desired concentration. By adding solvent to a measured portion of a more concentrated stock solution, we can achieve a particular concentration. For example, commercial pesticides are typically sold as solutions in which the active ingredients are far more concentrated than is appropriate for their application. Before they can be used on crops, the pesticides must be diluted. This is also a very common practice for the preparation of a number of common laboratory reagents (Figure \(\PageIndex{3}\)).

    Figure \(\PageIndex{3}\): A solution of \(KMnO_4\) is prepared by mixing water with 4.74 g of KMnO4 in a flask. (credit: modification of work by Mark Ott)
    This figure shows two photos. In the first, there is an empty glass container, 4.75 g of K M n O subscript 4 powder on a white circle, and a bottle of distilled water. In the second photo the powder and about half the water have been added to the glass container. The liquid in the glass container is almost black in color.

    A simple mathematical relationship can be used to relate the volumes and concentrations of a solution before and after the dilution process. According to the definition of molarity, the molar amount of solute in a solution is equal to the product of the solution’s molarity and its volume in liters:

    \[n=ML \nonumber \]

    Expressions like these may be written for a solution before and after it is diluted:

    \[n_1=M_1L_1 \nonumber \]

    \[n_2=M_2L_2 \nonumber \]

    where the subscripts “1” and “2” refer to the solution before and after the dilution, respectively. Since the dilution process does not change the amount of solute in the solution,n1 = n2. Thus, these two equations may be set equal to one another:

    \[M_1L_1=M_2L_2 \nonumber \]

    This relation is commonly referred to as the dilution equation. Although we derived this equation using molarity as the unit of concentration and liters as the unit of volume, other units of concentration and volume may be used, so long as the units properly cancel per the factor-label method. Reflecting this versatility, the dilution equation is often written in the more general form:

    \[C_1V_1=C_2V_2 \nonumber \]

    where \(C\) and \(V\) are concentration and volume, respectively.

    Example \(\PageIndex{6}\): Determining the Concentration of a Diluted Solution

    If 0.850 L of a 5.00-M solution of copper nitrate, Cu(NO3)2, is diluted to a volume of 1.80 L by the addition of water, what is the molarity of the diluted solution?

    Solution

    We are given the volume and concentration of a stock solution, V1 and C1, and the volume of the resultant diluted solution, V2. We need to find the concentration of the diluted solution, C2. We thus rearrange the dilution equation in order to isolate C2:

    \[C_1V_1=C_2V_2 \nonumber \]

    \[C_2=\dfrac{C_1V_1}{V_2} \nonumber \]

    Since the stock solution is being diluted by more than two-fold (volume is increased from 0.85 L to 1.80 L), we would expect the diluted solution’s concentration to be less than one-half 5 M. We will compare this ballpark estimate to the calculated result to check for any gross errors in computation (for example, such as an improper substitution of the given quantities). Substituting the given values for the terms on the right side of this equation yields:

    \[C_2=\mathrm{\dfrac{0.850\:L\times 5.00\:\dfrac{mol}{L}}{1.80\: L}}=2.36\:M \nonumber \]

    This result compares well to our ballpark estimate (it’s a bit less than one-half the stock concentration, 5 M).

    Exercise \(\PageIndex{6}\)

    What is the concentration of the solution that results from diluting 25.0 mL of a 2.04-M solution of CH3OH to 500.0 mL?

    

    Answer

    0.102 M \(CH_3OH\)

    Example \(\PageIndex{7}\): Volume of a Diluted Solution

    What volume of 0.12 M HBr can be prepared from 11 mL (0.011 L) of 0.45 M HBr?

    Solution

    We are given the volume and concentration of a stock solution, V1 and C1, and the concentration of the resultant diluted solution, C2. We need to find the volume of the diluted solution, V2. We thus rearrange the dilution equation in order to isolate V2:

    \[C_1V_1=C_2V_2 \nonumber \]

    \[V_2=\dfrac{C_1V_1}{C_2} \nonumber \]

    Since the diluted concentration (0.12 M) is slightly more than one-fourth the original concentration (0.45 M), we would expect the volume of the diluted solution to be roughly four times the original volume, or around 44 mL. Substituting the given values and solving for the unknown volume yields:

    \[V_2=\dfrac{(0.45\:M)(0.011\: \ce L)}{(0.12\:M)} \nonumber \]

    \[V_2=\mathrm{0.041\:L} \nonumber \]

    The volume of the 0.12-M solution is 0.041 L (41 mL). The result is reasonable and compares well with our rough estimate.

    Exercise \(\PageIndex{7}\)

    A laboratory experiment calls for 0.125 M \(HNO_3\). What volume of 0.125 M \(HNO_3\) can be prepared from 0.250 L of 1.88 M \(HNO_3\)?

    Answer

    3.76 L

    Example \(\PageIndex{8}\): Volume of a Concentrated Solution Needed for Dilution

    What volume of 1.59 M KOH is required to prepare 5.00 L of 0.100 M KOH?

    Solution

    We are given the concentration of a stock solution, C1, and the volume and concentration of the resultant diluted solution, V2 and C2. We need to find the volume of the stock solution, V1. We thus rearrange the dilution equation in order to isolate V1:

    \[C_1V_1=C_2V_2 \nonumber \]

    \[V_1=\dfrac{C_2V_2}{C_1} \nonumber \]

    Since the concentration of the diluted solution 0.100 M is roughly one-sixteenth that of the stock solution (1.59 M), we would expect the volume of the stock solution to be about one-sixteenth that of the diluted solution, or around 0.3 liters. Substituting the given values and solving for the unknown volume yields:

    \[V_1=\dfrac{(0.100\:M)(5.00\:\ce L)}{1.59\:M} \nonumber \]

    \[V_1=0.314\:\ce L \nonumber \]

    Thus, we would need 0.314 L of the 1.59-M solution to prepare the desired solution. This result is consistent with our rough estimate.

    Exercise \(\PageIndex{8}\)

    What volume of a 0.575-M solution of glucose, C6H12O6, can be prepared from 50.00 mL of a 3.00-M glucose solution?

    Answer

    0.261 

     

    Summary

    Solutions are homogeneous mixtures. Many solutions contain one component, called the solvent, in which other components, called solutes, are dissolved. An aqueous solution is one for which the solvent is water. The concentration of a solution is a measure of the relative amount of solute in a given amount of solution. Concentrations may be measured using various units, with one very useful unit being molarity, defined as the number of moles of solute per liter of solution. The solute concentration of a solution may be decreased by adding solvent, a process referred to as dilution. The dilution equation is a simple relation between concentrations and volumes of a solution before and after dilution.

    Key Equations

    • \(M=\mathrm{\dfrac{mol\: solute}{L\: solution}}\)
    • C1V1 = C2V2

    Glossary

    aqueous solution
    solution for which water is the solvent
    concentrated
    qualitative term for a solution containing solute at a relatively high concentration
    concentration
    quantitative measure of the relative amounts of solute and solvent present in a solution
    dilute
    qualitative term for a solution containing solute at a relatively low concentration
    dilution
    process of adding solvent to a solution in order to lower the concentration of solutes
    dissolved
    describes the process by which solute components are dispersed in a solvent
    molarity (M)
    unit of concentration, defined as the number of moles of solute dissolved in 1 liter of solution
    solute
    solution component present in a concentration less than that of the solvent
    solvent
    solution component present in a concentration that is higher relative to other components

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