The acidity of a solution is measured by its pH. If H+ represents the concentration of hydrogen ions (in moles/liter) in the solution, the pH is defined by :- log H+] pH = Suppose a solution has pH = 1.09. (a) Rewrite the logarithmic form of the equation into exponential form. (9 indicates two way equivalence) Click for List * [H*] = pH > - log = pH → Click for List Click for List a [*] (b) Find Ht, the approximate concentration of hydrogen ions. (Select one) O [H*]= 0.9174 moles/liter O [H*]~ -0.0374 moles/liter O [H*]~ 26.719 moles/liter [H*]~ 0.0374 moles/liter O [H*]~ -12.3027 moles/liter O [H*]~ 0.08128 moles/liter [H*]= 0.04064 moles/liter
The acidity of a solution is measured by its pH. If H+ represents the concentration of hydrogen ions (in moles/liter) in the solution, the pH is defined by :- log H+] pH = Suppose a solution has pH = 1.09. (a) Rewrite the logarithmic form of the equation into exponential form. (9 indicates two way equivalence) Click for List * [H*] = pH > - log = pH → Click for List Click for List a [*] (b) Find Ht, the approximate concentration of hydrogen ions. (Select one) O [H*]= 0.9174 moles/liter O [H*]~ -0.0374 moles/liter O [H*]~ 26.719 moles/liter [H*]~ 0.0374 moles/liter O [H*]~ -12.3027 moles/liter O [H*]~ 0.08128 moles/liter [H*]= 0.04064 moles/liter
Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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![The acidity of a solution is measured by its pH.
If H
represents the concentration of hydrogen ions (in moles/liter) in the solution, the pH is defined by
pH:
- log H+
Suppose a solution has pH = 1.09.
(a) Rewrite the logarithmic form of the equation into exponential form. (O indicates two way equivalence)
Click for List
- log [H*]
pH O
Click for List
Click for List
(b) Find
H+, the approximate concentration of hydrogen ions. (Select one)
O [H*]~0.9174 moles/liter
[H*]~ -0.0374 moles/liter
[H*]=
= 26.719 moles/liter
[H']~0.0374 moles/liter
[H]= -12.3027 moles/liter
O [H*]~ 0.08128 moles/liter
O [H*]= 0.04064 moles/liter](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Ff69901e7-12a4-49a2-b296-bae9403d0ae9%2F32e2f7d3-d612-4a50-a793-c47ab167f14d%2Fm3jlcdb_processed.png&w=3840&q=75)
Transcribed Image Text:The acidity of a solution is measured by its pH.
If H
represents the concentration of hydrogen ions (in moles/liter) in the solution, the pH is defined by
pH:
- log H+
Suppose a solution has pH = 1.09.
(a) Rewrite the logarithmic form of the equation into exponential form. (O indicates two way equivalence)
Click for List
- log [H*]
pH O
Click for List
Click for List
(b) Find
H+, the approximate concentration of hydrogen ions. (Select one)
O [H*]~0.9174 moles/liter
[H*]~ -0.0374 moles/liter
[H*]=
= 26.719 moles/liter
[H']~0.0374 moles/liter
[H]= -12.3027 moles/liter
O [H*]~ 0.08128 moles/liter
O [H*]= 0.04064 moles/liter
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