ACID MIXING INSTRUCTIONS

ALL BASED ON MILLILITERS OF CONCENTRATED

ACID PER LITER OF MIXED SOLUTION

NITRIC ACID

1 MOLAR...... 64ml/LITER

2 MOLAR...... 128ml/LITER

6 MOLAR...... 384ml/LITER

HYDROCHLORIC ACID

.1 MOLAR...... 8.6ml/LITER

.5 MOLAR...... 42.8ml/LITER

1 MOLAR...... 85.5ml/LITER

2 MOLAR...... 171ml/LITER

6 MOLAR...... 513ml/LITER

SULFURIC ACID

1 MOLAR...... 55.5ml/LITER

2 MOLAR...... 111ml/LITER

6 MOLAR...... 340ml/LITER

Information Sheet: ACIDS-BASES-SALTS

ACIDS-Taste sour

Turn Litmus pink

Corrode metals to form H2

Harmful to living tissue

Neutralize all bases

Conduct electricity

Give off H+ in aq. Solution (Arrhenius theory)

Give off protons in aq. Soln. (Bronsted-Lowry theory)

Accepts 2 e-‘s forming a covalent bond (Lewis Theory)

Monoprotic, Diprotic, Triprotic (all H+’s are not released at once)

BASES-Taste bitter

Turn litmus blue

Harmful to living tissues

Neutralize all acids

Conduct electricity

Give off OH- ions in aq. Solutions (Arrhenius)

Accept protons in aq. Solution (Bronsted-Lowry)

Donates 2 e-‘s forming covalent bond (Lewis Theory)

SALTS-Product of an ACID-BASE neutralization

Ionic compounds

Contain POSITIVE ion from base; Contain NEGATIVE ion from acid

Usually have high melting points

Conduct electrical current in aq. solutions

Molten form also conducts electricity

NEUTRALIZATION OF ACIDS AND BASES (be sure to check charges and BALANCE equation)

ACID + BASE --> WATER + SALT

HCl + NaOH --> H20 + NaCl

H+ + Cl- + Na+ + OH- --> H2O + NaCl (IONS FORMING SALT IS BASED UPON SOLUBILITY

H2SO4 + Ba(OH)2 --> 2H20 + BaSO4

EQUILIBRIUM OF [H+] and [OH-} in aqueous solution.

Because of neutralization, the amount of acid affects the amount of base present in aqueous solutions.

MORE ACID--LESS BASE : MORE BASE--LESS ACID

Kw – a mathematical relationship between [H+] and [OH-] Kw = 1E-14

Kw = [H+][OH-]

Kw = 1E-14 = [H+][OH-]

Example: if the [H+] = 2.5E-3 M, find the [OH-] of the solution.

Kw = [H+][OH-]

1E-14 = (2.5E-3)[OH-]

[OH-] = 1E-14 / 2.5E-3 = 4E-12 M

Example: if the [OH-] = 3.33E-5 M, find the [H+] of the solution

Kw = [H+][OH-]

1E-14 = [H+](3.33E-5)

[H+] = 1E-14 / 3.33-5 = 3E-10 M

pH = -(Log[H+])

N

pH Scale from 0------7------14

Acids | Bases

Strong Weak|Weak Strong

Weak Acid Dissociation: HA à H+ + A- where HA does NOT dissociate 100% but reaches equilibrium.

[H+][A-]

Ka = ______

[HA]

Acid-Base Worksheet I Kw Problems Name ______

1. Find the [OH-] in a .0023 M HCl solution. (4.35e-12)

2. Find the [H+] in a .000005 M NaOH solution. (2e-9)

3. Find the [H+] in a 8.9E-4 M Ba(OH)2 solution. (5.62e-12)

4. Find the [H+] in a 3.4e-4 M HNO3 solution. (3.4e-4)

pH Problems

pH = -(Log[H+])

N

pH Scale from 0------7------14

Acids | Bases

Strong Weal|Weak Strong

Example: If the [H+] = 2.5E-5, find the phFIND THE pH.

pH= -(LOG(2.5E-5))

= -(-4.6020)

= 4.6020

Example: if the pH=2.3445, find the [H+].

[H+]= -(ANTILOG(-2.3445))

[H+]= 4.5E-3

PROBLEMS:

1. Find the [H+] if the pH is 12.4356. (3.66e-13M)

2. FIND THE pH IF THE [H+] IS .0000411. (4.3862)

ACID-BASE WORKSHEET II NAME______

I. WRITE THE NEUTRALIZATION EQUATIONS FOR: (BE SURE TO BALANCE)

a. NITRIC ACID AND LITHIUM HYDROXIDE 1111

b. SULFURIC ACID AND CALCIUM HYDROXIDE 1121

c. ACETIC ACID AND AMMONIUM HYDROXIDE 1111

II. WHAT IS THE [H+], [OH-], AND THE pH OF A SOLUTION MADE BY

ADDING 1.2 L. OF WATER TO 300 ml. OF .5 M HCL SOLUTION.

[H+]=.1 M

[Cl-]=.1 M

[OH-]=1E-13

pH = 1

III. WHAT IS THE [H+], [OH-], AND THE pH OF A SOLUTION MADE BY

ADDING 5.8 L. OF WATER TO 800 ml. OF .085 M HCL SOLUTION.

[H+]=.0103 M

[Cl-]=.0103 M

[OH-]= 9.71e-13

pH = 1.9872

IV. IF 15 GRAMS OF BARIUM HYDROXIDE ARE DISSOLVED INTO WATER TO MAKE 176 L. OF SOLUTION, FIND THE [Ba+2], [OH-], [H+] AND THE pH OF THE SOLN.

[Ba+2]=.000498

[OH-]=.000999 [H+]=1e-11

pH=11.0000

Acid-Base Worksheet III Name______Per_____

I. IF THE pH OF A NITRIC ACID SOLUTION IS 3.3040, FIND THE [H+], [NO3-]

AND THE [OH-].

[H+]=.000497

[NO3-]=.000497

[OH-]=2e-11

II. IF 200 ml OF .35 M HNO3 IS MIXED WITH 400 ml OF .2 M RbOH

CALCULATE WHICH CHEMICAL IS IN EXCESS, THE [H+], [OH-],

[Rb+], AND THE pH OF THE RESULTING SOLUTION.

EXCESS=.01 MOLES OH-

[OH-]=.0167 M

[H+]= 5.98e-13 M

pH= 12.2229

III. YOU ARE TITRATING 30 ml OF UNKNOWN ACID WITH .35 M KOH.

THE SOLUTION TURNS PINK AFTER 45.6 ml OF THE BASE IS ADDED.

CALCULATE THE [H+], [OH-] AND THE pH OF THE ACID SOLUTION.

pH=.2738 [H+]=.533 M [OH-]=1.87E-14

IV. IF 300 ml OF .45 M HNO3 IS MIXED WITH 400 ml OF .2 M Ca(OH)2

CALCULATE WHICH CHEMICAL IS IN EXCESS, THE [H+], [OH-],

[Ca+2], AND THE pH OF THE RESULTING SOLUTION.

EXCESS=.025 MOLES OH-

[OH-]=.0357 M

[H+]=2.8E-13 M

pH= 12.5527

V. YOU ARE TITRATING 25 ml OF UNKNOWN ACID WITH 1.5 M KOH.

THE SOLUTION TURNS PINK AFTER 8.2 ml OF THE BASE IS ADDED.

CALCULATE THE [H+] AND THE pH OF THE ACID SOLUTION.

[H+]=.492M pH=.3080

Acid-Base Worksheet IV Name ______Per ______

I. (Honors Only) 7.5 GRAMS OF THE ACID HA IS MIXED WITH WATER TO 2.5 LITERS.

HA DISSOCIATES INTO H+ IONS AND A- IONS. THE MOLAR MASS OF HA

IS 100 GRAMS/MOLE. FIND THE [H+], [A-], [HA], [OH-], & pH.

Ka=9.5E-9 (weak acid dissociation)

[HA]=2.99E-2 [H+]=1.69E-5 [OH-]=5.92E-10

II. WRITE THE NEUTRALIZATION EQUATIONS FOR: (BE SURE TO BALANCE)

a. PHOSPHORIC ACID AND LITHIUM HYDROXIDE 1331

b. SULFURIC ACID AND ALUMINUM HYDROXIDE 3261

c. ACETIC ACID AND BARIUM HYDROXIDE 2121

III. HOW MANY HYDROGEN IONS ARE IN 50 ml OF .025 M HBr SOLUTION?

7.53e20 ions

IV. WHAT IS THE MOLARITY OF HYDROGEN IONS IN AN ACID SOLUTION

WHOSE pH IS LISTED AS 1.3342? [H+]=4.63E-2M

V. IF 150 ml OF .035 M HI ARE MIXED WITH 150 ml OF .015 M Ca(OH)2,

FIND ALL ION CONCENTRATIONS IN RESULTING SOLUTION. ASSUME

BOTH CHEMICALS ARE STRONG ELECTROLYTES.

[I-]=1.75E-2

[Ca++]=7.5E-3

[H+]=2.5E-3

[OH-]=4E-12

pH=2.6021

VI. a.) WHAT IS THE MOLARITY OF AN UNKNOWN ACID IF 35 ml OF IT ARE

TITRATED TO EQUIVILENCE BY 17.3 ml OF .15 M NaOH.

7.41E-2M

b.) HOW MANY GRAMS OF SOLID SODIUM HYDROXIDE WILL BE NEEDED TO

MAKE 100 ml OF A BASE SOLUTION THAT IS AS STRONG AS THE

UNKNOWN ACID? 2.97E-1g

VII. (Honors only)A 25 GRAM SAMPLE OF BENZOIC ACID (C6H5COOH)IS DISSOLVED IN WATER

TO 1200 ml. FIND THE [SPECIES] AT EQUILIBRIUM. Ka=6.5E-6

FIND THE pH ALSO. X=1.05E-3M

[C6H5COOH] = 1.699e-3M