The pH of a 0.25 M aqueous solution H 3 PO 4 has to be calculated. Concept Information: Acid ionization constant K a : Acids ionize in water. Strong acids ionize completely whereas weak acids ionize to some limited extent. The degree to which a weak acid ionizes depends on the concentration of the acid and the equilibrium constant for the ionization. The ionization of a weak acid HA can be given as follows, HA ( a q ) → H + ( a q ) + A - ( a q ) The equilibrium expression for the above reaction is given below. K a = [ H + ][A - ] [ HA] Where, K a is acid ionization constant, [ H + ] is concentration of hydrogen ion [ A - ] is concentration of acid anion [ HA] is concentration of the acid pH definition: The concentration of hydrogen ion is measured using pH scale. The acidity of aqueous solution is expressed by pH scale. The pH of a solution is defined as the negative base-10 logarithm of the hydrogen or hydronium ion concentration. pH = -log[H 3 O + ] Diprotic and polyprotic acids: Acids having two or more hydrogen atoms are termed as diprotic or polyprotic acids. These acids lose one proton at a time by undergoing successive ionizations. For diprotic acids, the successive ionization constants are designated as K a 1 a n d K a 2 For triprotic acids, the successive ionization constants are designated as K a 1 , K a 2 a n d K a 3 To Calculate: The pH of a 0.25 M aqueous solution H 3 PO 4
The pH of a 0.25 M aqueous solution H 3 PO 4 has to be calculated. Concept Information: Acid ionization constant K a : Acids ionize in water. Strong acids ionize completely whereas weak acids ionize to some limited extent. The degree to which a weak acid ionizes depends on the concentration of the acid and the equilibrium constant for the ionization. The ionization of a weak acid HA can be given as follows, HA ( a q ) → H + ( a q ) + A - ( a q ) The equilibrium expression for the above reaction is given below. K a = [ H + ][A - ] [ HA] Where, K a is acid ionization constant, [ H + ] is concentration of hydrogen ion [ A - ] is concentration of acid anion [ HA] is concentration of the acid pH definition: The concentration of hydrogen ion is measured using pH scale. The acidity of aqueous solution is expressed by pH scale. The pH of a solution is defined as the negative base-10 logarithm of the hydrogen or hydronium ion concentration. pH = -log[H 3 O + ] Diprotic and polyprotic acids: Acids having two or more hydrogen atoms are termed as diprotic or polyprotic acids. These acids lose one proton at a time by undergoing successive ionizations. For diprotic acids, the successive ionization constants are designated as K a 1 a n d K a 2 For triprotic acids, the successive ionization constants are designated as K a 1 , K a 2 a n d K a 3 To Calculate: The pH of a 0.25 M aqueous solution H 3 PO 4
Solution Summary: The author explains how the pH of a 0.25 M solution is calculated. The concentration of hydrogen ion is measured using pH
The pH of a 0.25 M aqueous solution
H3PO4 has to be calculated.
Concept Information:
Acid ionization constant
Ka:
Acids ionize in water. Strong acids ionize completely whereas weak acids ionize to some limited extent.
The degree to which a weak acid ionizes depends on the concentration of the acid and the equilibrium constant for the ionization.
The ionization of a weak acid
HA can be given as follows,
HA(aq)→H+(aq)+A-(aq)
The equilibrium expression for the above reaction is given below.
Ka=[H+][A-][HA]
Where,
Ka is acid ionization constant,
[H+] is concentration of hydrogen ion
[A-] is concentration of acid anion
[HA] is concentration of the acid
pH definition:
The concentration of hydrogen ion is measured using
pH scale. The acidity of aqueous solution is expressed by
pH scale.
The
pH of a solution is defined as the negative base-10 logarithm of the hydrogen or hydronium ion concentration.
pH=-log[H3O+]
Diprotic and polyprotic acids:
Acids having two or more hydrogen atoms are termed as diprotic or polyprotic acids. These acids lose one proton at a time by undergoing successive ionizations.
For diprotic acids, the successive ionization constants are designated as
Ka1andKa2
For triprotic acids, the successive ionization constants are designated as
Ka1,Ka2andKa3
To Calculate: The pH of a 0.25 M aqueous solution
H3PO4
Rel. Intensity
Q
1. Which one of the following is true of the compound
whose mass spectrum is shown
here? Explain how you decided.
100
a) It contains chlorine.
b) It contains bromine.
c) It contains neither chlorine nor bromine.
80-
60-
40-
20-
0.0
0.0
TT
40
80
120
160
m/z
2. Using the Table of IR Absorptions how could you
distinguish between these two
compounds in the IR?
What absorbance would one compound have that the
other compound does not?
HO
CI
Illustrate reaction mechanisms of
alkenes with water in the presence of
H2SO4, detailing each step of the
process. Please show steps of
processing. Please do both, I will
thumb up for sure
#1
#3
Draw the following molecule: (Z)-1-chloro-1-butene
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