Consider the following acids:   barbituric acid hypochlorous acid iodic acid pentanoic acid HC4H3N2O3 HClO HIO3 HC5H9O2 9.8×10-5 2.9×10-8 1.7×10-1 1.5×10-5 Order these acids from weakest to strongest. (weakest) < < < (strongest) Order the conjugate bases for these acids from weakest to strongest. (weakest) < < < (strongest) Order 0.150 M solutions of each acid above from lowest to highest pH. (lowest) < < < (highest) Order 0.150 M solutions of each acid above from lowest to highest percent dissociation.  (lowest) < < < (highest)

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Chapter1: Chemical Foundations
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Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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Consider the following acids:

 

barbituric acid

hypochlorous acid

iodic acid

pentanoic acid

HC4H3N2O3

HClO

HIO3

HC5H9O2

9.8×10-5

2.9×10-8

1.7×10-1

1.5×10-5

Order these acids from weakest to strongest.

(weakest) < < < (strongest)

Order the conjugate bases for these acids from weakest to strongest.

(weakest) < < < (strongest)

Order 0.150 M solutions of each acid above from lowest to highest pH.

(lowest) < < < (highest)

Order 0.150 M solutions of each acid above from lowest to highest percent dissociation.

 (lowest) < < < (highest) 

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