Skip to main content
Chemistry LibreTexts

14.7.1: Foods- From Cleaning and Disinfection to Microbial Nutrition and Protein Modification

  • Page ID
    50894
  • \( \newcommand{\vecs}[1]{\overset { \scriptstyle \rightharpoonup} {\mathbf{#1}} } \) \( \newcommand{\vecd}[1]{\overset{-\!-\!\rightharpoonup}{\vphantom{a}\smash {#1}}} \)\(\newcommand{\id}{\mathrm{id}}\) \( \newcommand{\Span}{\mathrm{span}}\) \( \newcommand{\kernel}{\mathrm{null}\,}\) \( \newcommand{\range}{\mathrm{range}\,}\) \( \newcommand{\RealPart}{\mathrm{Re}}\) \( \newcommand{\ImaginaryPart}{\mathrm{Im}}\) \( \newcommand{\Argument}{\mathrm{Arg}}\) \( \newcommand{\norm}[1]{\| #1 \|}\) \( \newcommand{\inner}[2]{\langle #1, #2 \rangle}\) \( \newcommand{\Span}{\mathrm{span}}\) \(\newcommand{\id}{\mathrm{id}}\) \( \newcommand{\Span}{\mathrm{span}}\) \( \newcommand{\kernel}{\mathrm{null}\,}\) \( \newcommand{\range}{\mathrm{range}\,}\) \( \newcommand{\RealPart}{\mathrm{Re}}\) \( \newcommand{\ImaginaryPart}{\mathrm{Im}}\) \( \newcommand{\Argument}{\mathrm{Arg}}\) \( \newcommand{\norm}[1]{\| #1 \|}\) \( \newcommand{\inner}[2]{\langle #1, #2 \rangle}\) \( \newcommand{\Span}{\mathrm{span}}\)\(\newcommand{\AA}{\unicode[.8,0]{x212B}}\)

    How are conjugate acid-base pairs related to microorganisms, imitation fish products, and bread baking?

    alt

    Pseudomonas aeruginosa

    alt

    Surimi

    Error creating thumbnail: /home/luis_acs/mediawiki/htdocs/bin/ulimit4.sh: line 4: /usr/bin/convert: No such file or directory

    Yeast leavened bread

    One of the more useful aspects of the Brönsted-Lowry definition of acids and bases in helping us deal with the pH of solutions is the concept of the conjugate acid-base pair. The strength of an acid and its conjugate base are inversely related. The stronger one is, the weaker the other will be. The acids presented in Weak acids in foods - pH and beyond generate relatively strong bases with respect to the strength of their conjugate acid. The function of these acids and bases in foods and other biological systems largely depends on the pH of the medium. Another important conjugate acid-base pair related to foods is hypochlorous acid and hypochlorite (HClO/ClO-). Yes, even though this pair does not occur naturally in foods, it is of great importance in food processing. NaOCl is an ideal disinfectant and possesses excellent cleaning action making it the most widely used disinfectant for processing equipment, finished products, ingredients, and worker's hands in the food industry . A dynamic pair: HClO/ClO-

    Sodium hypochlorite solutions are obtained by the absorption of gaseous chlorine in a sodium hydroxide solution,

    \(\text{Cl}_{2} + \text{2NaOH} \rightleftharpoons \text{NaOCL} + \text{NaCl} + \text{H}_{2}\text{O} \) The effectiveness of the cleaning and disinfecting activity of sodium hypochlorite depends not only on its concentration but also on the the pH of the solution.[1] In solution, the hipochlorite ion will form hypochlorous acid and hydroxide ions \(\text{ClO}^{-} + \text{H}_{2}\text{O} \rightleftharpoons \text{HOCL} + \text{OH}^{-} \) generating basic solutions. As the pH of a sodium hypochlorite solution decreases, between 4 and 6, HOCl becomes the predominant species. At lower pH, around 4, HOCl will be converted to chlorine gas (Cl2). \(\text{HOCL} + \text{H}^{+} +\text{Cl}^{-}\rightleftharpoons \text{Cl}_{2} + \text{H}_{2}\text{O}\) Thus, depending on the pH, chlorine can exists in three different forms in aqueous solutions: Cl2, HOCl, and ClO-. Chlorine gas is extremely toxic, reason why it is so important not to mix sodium hypochlorite solutions with acidic cleaning products. Commercial sodium hypochlorite solutions can be found in different concentrations ranging from 5 to 40% to which sodium chloride and alkali (usually NaOH), are added in order to ensure a solution with basic pH and reduce the corrosive effect of ClO-. Commercial solutions between 5-15% NaClO contain 0.25 - 0.35% free alkali and 0.5 - 1.5% NaCl.[2] What is the relationship between conjugate acid-base pairs? How can we calculate the pH of their solutions? The relationship between the strength of an acid and its conjugate base can be expressed quantitatively in terms of a very simple mathematical equation involving the appropriate acid and base constants. Suppose that we have a weak acid HA whose conjugate base is A. If either or both of these species are dissolved in H2O, the following equilibria will occur simultaneously. \(\text{HA} + \text{H}_{2}\text{O}\rightleftharpoons \text{H}_{3}\text{O}^{+} + \text{A}^{-} \) in which HA acts as acid and \(\text{A}^{-} + \text{H}_{2}\text{O}\rightleftharpoons \text{HA} + \text{OH}^{-}\) in which A acts as base To the first of these equilibria we can apply the equilibrium constant Ka(HA): \(K_{a}\text{(HA)}=\frac{[\text{ H}_{\text{3}}\text{O}^{\text{+}}][\text{ A}^{-}\text{ }]}{[\text{ HA }]}\) while to the second we can apply the equilibrium constant Kb(A): \(K_{b}\text{(A}^{-}\text{)}=\frac{[\text{ HA }][\text{ OH}^{-}\text{ }]}{[\text{ A}^{-}\text{ }]\text{ }}\) Multiplying these two constants together, we obtain a simple relationship between them. \(\begin{align} K_{a}\text{(HA)}\times K_{b}\text{(A}^{-}\text{)}&=\frac{[\text{H}_{\text{3}}\text{O}^{\text{+}}][\text{A}^{-}]}{[\text{HA }]}\times \frac{[\text{HA}][\text{OH}^{-}]}{[\text{A}^{-}]}\\ \text{ }\\ \text{ }&=[\text{H}_{\text{3}}\text{O}^{\text{+}}][\text{ OH}^{-}]\end{align}\)

    \(K_{a}\text{(HA)}\times K_{b}\text{(A}^{-}\text{)}=K_{w}\) (1)

    If we divide both sides of this equation by the units and take negative logarithms of both sides, we obtain

    \(\begin{align} \text{p}K_{a}&=-\text{log}\frac{K_{a}\text{(HA)}}{\text{mol dm}^{-\text{3}}}-\text{log}\frac{K_{b}\text{(A}^{-}\text{)}}{\text{mol dm}^{-\text{3}}}\\ \text{ }\\ \text{ }&=-\text{log}\frac{\text{10}^{-\text{14}}\text{ mol}^{\text{2}}\text{ dm}^{-\text{6}}}{\text{mol}^{\text{2}}\text{ dm}^{-6}}\end{align}\) \(\text{p}K_{a}\left(\text{HA}\right) + \text{ }\text{p}K_{b}\text{(A}^{-}\text{)}=\text{p}K_{w}\) (2) Thus the product of the acid constant for a weak acid and the base constant for the conjugate base must be Kw, and the sum of pKa and pKb for a conjugate acid-base pair is 14.

    Equation (1) or (2) enables us to calculate the base constant of a conjugate base from the acid constant of the acid, and vice versa. Given the acid constant for a weak acid like HOCl, for instance, we are able to calculate not only the pH of HOCl solutions but also the pH of solutions of salts like NaOCl or KOCl which are, in effect, solutions of the conjugate base of HOCl, namely, the hypochlorite ion, OCl.

    EXAMPLE 1 Find the pH of (a) 35% (m/v%) HOCl (hypochlorous acid) and (b) 35% (m/v%) commercial solution of NaOCl (sodium hypochlorite) from the value for Ka given in the table of Ka values.

    Solution

    a) For 35% (m/v%) HOCl, the solution contains 35 g of hypochlorous acid in 100 mL of solution and

    \(\begin{align} \text{n}_{\text{HOCl}}&=\frac{\text{35.0 g}\text{HOCl}}{\text{52.46 g}\text{ mol}^{-1}}\\ \text{ }&=\text{6.67 }\times\text{10}^{-1}\text{mol }\text{HOCl}\\ \end{align}\) and its concentration is then \(\begin{align} \text{ }[\text{HOCl}]\text{ }&=\frac{\text{n}_{\text{HOCl}}}{V_{\text{solution}}}=\frac{\text{6.67}\times \text{10}^{-1}\text{ mol }}{\text{1.0}\times \text{10}^{-1}\text{ dm}^{3}}\\ \text{ }&=\text{6.67 }\text{mol dm}^{-3}\\ \end{align}\) The concentration of hydronium-ions generated from the acid can be calculated using the following equation, discussed in the pH of Solutions of Weak Acids, \(\begin{align} \left[\text{H}_{3}\text{O}^{+}\right]&\approx\sqrt{K_{a}c_{a}}\\ \text{ }&\approx\sqrt{\text{3.9}\times\text{10}^{-8}\text{ mol dm}^{-\text{3}}\times \text{6.67} \text{ mol dm}^{-3}}\\ \text{ }&\approx\text{5.10}\times \text{ 10}^{-4}\text{ mol dm}^{-\text{3}} \end{align}\) Checking the accuracy of the approximation we find

    \(\begin{align} \frac{[\text{H}_{3}\text{O}^{+}]\text{ }}{c_{a}}&=\frac{\text{5.10}\times\text{10}^{-4}}{\text{6.67}}\\ \text{ }&=\text{7.6}\times\text{10}^{-5}, \,that \,is, \, \text{0.0076 percent}\\ \end{align}\)

    so that, the approximation is valid and the pH of the solution is \(\begin{align} \text{pH}&=-\text{log}\left(\text{5.10}\times\text{10}^{-4}\right)\\ \text{ }&=\text{3.29} \end{align}\) The relatively high concentration of the acid accounts for a weakly acidic solution in spite that the Ka for hypochlorous acid has an order of magnitude of 10-8.

    b) To calculate de pH for a 35% (m/v%) commercial solution of NaOCl, we need to calculate the number of moles that correspond to 35 g NaOCl in 100 mL of solution

    \(\begin{align} \text{n}_{\text{NaOCl}}&=\frac{\text{35.0 g}\text{ NaOCl}}{\text{74.44 g}\text{ mol}^{-1}}\\ \text{ }&=\text{4.7}\times\text{10}^{-1}\text{mol }\text{NaOCl}\\ \end{align}\) and its concentration is then \(\begin{align} \text{ }[\text{NaOCl}]\text{ }&=\frac{\text{n}_{\text{NaOCl}}}{V_{\text{solution}}}=\frac{\text{4.7}\times \text{10}^{-1}\text{ mol }}{\text{1.0}\times \text{10}^{-1}\text{ dm}^{3}}\\ \text{ }&=\text{4.7 }\text{mol dm}^{-3}\\ \end{align}\) Since 1 mol of NaOCL dissociates in 1 mol of Na+ and 1 mol OCl-, this solution contains 4.7 mol dm-3 OCl- ions. Now, we must calculate Kb: \(\begin{align}K_{b}\text{(OCl}^{-}\text{)}&=\frac{K_{w}}{K_{a}\text{(HOCl)}}\\ \text{ }&=\frac{\text{1.00}\times \text{10}^{-14}\text{ mol}^{2}\text{ dm}^{-6}}{\text{3.9}\times \text{ 10}^{-8}\text{ mol dm}^{-3}}\\ \text{ }&=\text{2.56}\times \text{10}^{-7}\text{ mol dm}^{-3} \end{align}\) Thus \(\begin{align}\left[\text{OH}^{-}\right]&\approx\sqrt{K_{b}c_{b}}\\ \text{ }&\approx\sqrt{\text{2.56}\times \text{10}^{-7}\text{ mol}\text{ dm}^{-3}\times \text{4.7}\text{ mol}\text{ dm}^{-3}}\\ \text{ }&\approx\text{1.1}\times \text{ 10}^{-3}\text{ mol dm}^{-3}\end{align}\) Checking the accuracy of the approximation we find \(\begin{align} \frac{[\text{OH}^{-}]\text{ }}{c_{b}}&=\frac{\text{1.1}\times\text{10}^{-3}}{\text{4.7}}\\ \text{ }&=\text{2.3}\times\text{10}^{-4}, \,that \,is, \, \text{0.023 percent}\\ \end{align}\) The pOH of this solution is then \(\begin{align} \text{pOH}&=-\text{log}\left(\text{1.1}\times\text{10}^{-3}\right)\\ \text{ }&=\text{2.96} \end{align}\) and the pH \(\begin{align}\text{pH}&=\text{14}-\text{pOH}\\ \text{ }&=\text{14}-\text{2.96}\\ \text{ }&=\text{11.04} \end{align}\) Again, the concentration of the base , OCl, accounts for a pH around 11.0 in this solution. What makes HClO/ClO- disinfecting agents?

    size=175</chemeddl-jmol2>
    Hypochlorous acid

    HOCl and ClO- are both strong oxidizing agents and react with a wide variety of biological molecules including proteins, amino acids, lipids, and DNA. Such reactivity...

    How does ClO- clean a surface?

    A detergent functions by minimizing the magnitude of attractive forces between soil and the solid surface by adsorption of detergent components both on soil and on the solid surface. Breaking the organic soil...

    Factors affecting the effectiveness of NaClO solutions

    The most relevant factors affecting the effectiveness of cleaning and disinfecting products...

    Environmental and health risks

    Chlorine based disinfectants can react with organic matter in water and form by-products like...

    alt
    Task: Look for actual numbers of volumes of NaClO used in the industrySverazo 00:49, 3 December 2009 (UTC) ( Sofia Erazo )

    Conjugate acid-base pairs and microbial nutrition

    Ammonium salts such as chloride and sulfate are employed in media growth for microorganisms as a source of nitrogen. Ammonium chloride is called "yeast food" in diverse fermentation processes including bread baking (S. cerevisiae) and production of citric acid (Y. lipolytica).

    alt

    Sacharomyces cerevisiae cells under differential interference microscopy

    alt

    Wet yeast

    Error creating thumbnail: /home/luis_acs/mediawiki/htdocs/bin/ulimit4.sh: line 4: /usr/bin/convert: No such file or directory

    Yeast leavened bread

    EXAMPLE 2 Find the pH of 0.05 M NH4Cl (ammonium chloride), using the value Kb(NH3) = 1.8 × 10–5 mol dm–3.

    Solution We regard this solution as a solution of the weak acid NH4+ and start by finding Ka for this species:

    \(\begin{align}K_{a}\text{(NH}_{\text{4}}^{\text{+}}\text{)}=\frac{K_{w}}{K_{b}\text{(NH}_{\text{3}}\text{)}}&=\frac{\text{1}\text{.00 }\times \text{ 10}^{-\text{14}}\text{ mol}^{\text{2}}\text{ dm}^{-\text{6}}}{\text{1}\text{.8 }\times \text{ 10}^{-\text{5}}\text{ mol dm}^{-\text{3}}}\\ \text{ }&=\text{5}\text{.56 }\times \text{ 10}^{-\text{10}}\text{ mol dm}^{-\text{3}}\end{align}\) We can now evaluate the hydronium-ion concentration with the usual approximation: \(\begin{align}\left[\text{ H}_{3}\text{O}^{+}\right]&=\sqrt{K_{a}c_{a}}\\ \text{ }&=\sqrt{\text{5}\text{.56 }\times \text{ 10}^{-\text{10}}\text{ mol dm}^{-\text{3}}\times \text{ 0}\text{.05 mol dm}^{-\text{3}}}\\ \text{ }&=\text{5}\text{.27 }\times \text{ 10}^{-6}\text{ mol dm}^{-\text{3}}\end{align}\) hence, \(\text{pH} = \text{log}\left( \text{5.27} \times \text{10}^{-6}\right) = \text{5.28}\) Note: The ammonium ion is a very weak acid (as seen in the Tables of Ka and and Kb values). A solution of NH4+ ions will thus not produce a very acidic solution. A pH of 5 is about the same pH as that of black coffee, not very acidic. Before the Brönsted-Lowry definition of acids and bases and the idea of conjugate acid-base pairs became generally accepted, the interpretation of acid-base behavior revolved very much around the equation \(\text{Acid} + \text{Base} \rightarrow \text{Salt} + \text{Water} \) In consequence the idea prevailed that when an acid reacted with a base, the resultant salt should be neither acidic or basic, but neutral. In order to explain why a solution of sodium acetate was basic or a solution of ammonium chloride was acidic, a special term called hydrolysis had to be invoked. Thus, for instance, sodium acetate was said to be hydrolyzed because the acetate ion reacted with water according to the reaction \(\text{CH}_{3}\text{COO}^{-} + \text{H}_{2}\text{O} \rightleftharpoons \text{CH}_{3} \text{COOH} + \text{OH}^{-}\) From the Brönsted-Lowry point of view there is, of course, nothing special about such a hydrolysis. It is a regular proton transfer. Nevertheless you should be aware of the existence of the term hydrolysis since it is still often used in this context.

    Because the Brönsted-Lowry definition is so successful at explaining why some salt solutions are acidic and some basic, one must beware of making the mistake of assuming that no salt solutions are neutral. Many are. A good example is 0.10 M NaNO3. This solution is neutral because neither the Na+ ion nor the NO3 ion shows any appreciable acidic or basic properties. Since NO3 is the conjugate base of HNO3 we might expect it to produce a basic solution, but NO3 is such a weak base that it is almost impossible to detect such an effect. Just how weak a base NO3 is can be demonstrated using the value of Ka (HNO3) = 20 mol dm–3 obtained from the Tables of Ka and and Kb values.

    \(\begin{align}K_{b}\text{(NO}_{\text{3}}^{-}\text{)}&=\frac{K_{w}}{K_{a}\text{(HNO}_{\text{3}}\text{)}}\\ \text{ }&=\frac{\text{1}\text{.00 }\times \text{ 10}^{-\text{14}}\text{ mol}^{\text{2}}\text{ dm}^{-\text{6}}}{\text{20 mol dm}^{-\text{3}}}\\ \text{ }&=\text{5}\text{.0 }\times \text{ 10}^{-\text{16}}\text{ mol dm}^{-\text{3}}\end{align}\) If we now apply the conventional formula from equation 4 from the section on the pH of weak base solutions to calculate [OH] in 0.10 M NaNO3, we obtain \(\begin{align}\left[\text{OH}^{-}\right]&=\sqrt{K_{b}c_{b}}\\ \text{ }&=\sqrt{\text{5}\text{.0 }\times \text{ 10}^{-\text{16}}\times \text{ 1}\text{.0 }\times \text{ 10}^{-\text{1}}\text{ mol dm}^{-\text{3}}}\\ \text{ }&=\text{7}\text{.1 }\times \text{ 10}^{-\text{9}}\text{ mol dm}^{-\text{3}}\end{align}\) But this is less than one-tenth the concentration of OH ion which would have been present in pure H2O, with no added NaNO3. Essentially all the OH ions are produced by H2O, and the pH turns out to be only slightly above 7.00. (Note also that the derivation of equation 4 from the pH of weak base solutions section assumed that the [OH] produced by H2O was negligible. To get an accurate result in this case requires a completely different equation.)

    In general, all salts that combine group I and group II cations with anions (conjugate bases) derived from of strong acids yield neutral solutions when dissolved in water. Examples are CaI2, LiNO3, KCl, and Mg(ClO4)2.

    There is only one exception to this rule. The hydrated beryllium ion, Be(H2O)42+, is a weak acid (Ka = 3.2 × 10–7 mol dm–3) so that solutions of beryllium salts are acidic.

    EXAMPLE 3 The following are salts used in food processing, classify them as acidic, basic, or neutral: (a) 1 M Potassium bromate; (b) 1 M trisodium citrate; (c)1 M trisodium phosphate; (d) 1 M Sodium aluminum sulfate; (e) 1 M potassium hydrogen sulfate; (f) 1 M ammonium chloride. 

    Solution

    Salt Cation Anion Overall Used in[1] [2]
    KBrO3 Neutral Neutral Neutral Flour conditioning: Oxidation of wheat glutathione into its disulfide.
    Na3C6H5O7 Neutral Basic Basic Condensed milk for pH adjustment and binding of calcium to avoid aggregation of casein.
    Na3PO4 Neutral Basic Basic Emulsifier, protein modifier, buffering agent in confectionery,cereals, and processed cheese.
    NaAl(SO4)2 Neutral, Acidic Neutral Acidic Because of its slow reaction rate, it is used in combination with other leavening acids to provide tunneling or blistering effects in baked products.
    KH2PO4 Neutral Acidic Acidic Buffering agent, mineral supplement.
    NH4Cl Acidic Neutral Acidic Yeast fermentation processes as a source of nitrogen for yeast metabolism.

    The table lists the acid-base properties of some of the more frequently encountered ions and provides a quick reference for deciding whether a given salt will be acidic, basic, or neutral in solution. Note that the table tells us nothing about the strength of any acid or base. If we need to know more about the pH, other than whether it is above, below, or equal to 7, we need information about the actual value of the acid or base constant. The table also lists the SO42–ion as neutral, though classifying it as very feebly basic would be more accurate. The Acid-Base Properties of Some Common Ions 

    Cations Anions Anion
    Acidic

    Cr3+, Fe3+, Al3+

    Hg2+, Be2+ NH4+, H3O+

    HSO4
    Neutral

    Mg2+, Ca2+, Sr2+, Ba2+

    Li+, Na+, K+ Ag+

    NO3, ClO4

    Cl, Br, I SO42– (very weakly basic)

    Basic None

    PO43, CO32, SO32

    F, CN, OH, S2– CH3COO, HCO3

    EXAMPLE 4 Without actually doing any calculations, match the following solutions and pH values, using the Tables of Ka and and Kb values, and the table on this page. 

    Aqueous Solution

    1 M

    pH

    ?

    NH4NO3 8.0
    Na4P2O7 11.7
    NaNO3 9.4
    MgSO4 7.0

    (CH3COO)2Ca

    (calcium acetate)

    1.0
    KHSO4 4.6

    Solution The pH of 7.0 is easiest to pick. Only one of the salt solutions given has both a neutral anion and a neutral cation. This is NaNO3. In the case of MgSO4 the Mg2+ ion is neutral but the SO42 ion is very feebly basic; this would agree with a pH of 8.0, only slightly basic. The SO42 ion is such a feeble base because its conjugate acid, HSO4, is quite a strong acid, certainly the most acidic of all the ions featured. Accordingly we expect 1 M KHSO4 to correspond to the lowest pH, namely, 1.0. The only other acidic solution is 4.6, and this must correspond to 1 M NH4NO3 since NH4+ is the only other acidic ion present. Among basic ions the pyrophosphate ion,P2O7, is the strongest. The most basic pH, 11.7, thus corresponds to 1 M Na4P2O7. Only one solution is left: 1 M (CH3COO)2Ca. This should be feebly basic and so matches the remaining pH of 9.4 rather well.

    Aqueous Solution

    1 M

    pH Application in food[3] [4]
    NH4NO3 4.6 Fertilizer and fermentation processes.
    Na4P2O7 11.7 Used in milk based beverages, sea food, processed meat, pet food, and confectionery products as chelating agent, protein modifier, dispersing agent, coagulant, pH adjustment.[3]
    NaNO3 7.0 Preserve red color of meat and antimicrobial activity against C. botulinum (its activiy is pH dependent). Also found in fruits and vegetables (i.e. lettuce, radish, rhubarb and strawberries).
    MgSO4 8.0 Supplementation for magnesium in soil and livestock diet.[3] Coagulation of soy proteins in production of tofu.
    (CH3COO)2Ca (calcium acetate) 9.4 Chelating agent for stabilization of color, aroma, and texture.
    KHSO4 1.0 Antimicrobial and acidulant.

     

    References

    1. Food Chemistry 3rd Ed. 2004 Belitz, et al.
    2. Food Additives, 2nd ed. 2002, Branen, A., Davidson, M.P., Salminen, S. and Thorngate III, J.H.
    3. Humphreys, J.L., Carlson, M.S., Lorenzen, C.L. 2009. Dietary supplementation of magnesium sulfate and sodium bicarbonate and its effect on pork quality during environmental stress. Livestock Sci. 125:1:15-21

    Contributors


    • Was this article helpful?