| Chapter/ Section |
Title |
Vernier Lab Book |
Vernier Experiment |
Sensor(s) Used |
| 1 |
The Science of Chemistry |
Chemistry with Vernier |
8 | Fractional Distillation |
Stainless Steel Temperature Probe
|
| 2 |
Matter and Energy |
Chemistry with Vernier |
1 | Endothermic and Exothermic Reactions |
Stainless Steel Temperature Probe
|
| 4 | Heat of Fusion of Ice |
Stainless Steel Temperature Probe
|
| 16 | Energy Content of Foods |
Stainless Steel Temperature Probe
|
| 17 | Energy Content of Fuels |
Stainless Steel Temperature Probe
|
| 5 |
Ionic Compounds |
Chemistry with Vernier |
13 | Properties of Solutions: Electrolytes and Non-Electrolytes |
Conductivity Probe
|
| 14 | Conductivity of Solutions: The Effect of Concentration |
Conductivity Probe
|
| 26 | Using Conductivity to Find an Equivalence Point |
|
| Science with TI-Nspire Technology |
22 | Properties of Solutions: Electrolytes and Non-Electrolytes |
Conductivity Probe
|
| 23 | Conductivity of Solutions: The Effect of Concentration |
Conductivity Probe
|
| 6 |
Covalent Bonds and Molecular Forces |
Chemistry with Vernier |
9 | Evaporation and Intermolecular Attractions |
Stainless Steel Temperature Probe (2)
|
| Science with TI-Nspire Technology |
20 | Evaporation and Intermolecular Attractions |
Stainless Steel Temperature Probe (2)
|
| 7 |
Carbon and Organic Compounds |
Chemistry with Vernier |
9 | Evaporation and Intermolecular Attractions |
Stainless Steel Temperature Probe (2)
|
| 17 | Energy Content of Fuels |
Stainless Steel Temperature Probe
|
| Science with TI-Nspire Technology |
20 | Evaporation and Intermolecular Attractions |
Stainless Steel Temperature Probe (2)
|
| 9 |
Chemical Equations |
Chemistry with Vernier |
1 | Endothermic and Exothermic Reactions |
Stainless Steel Temperature Probe
|
| 16 | Energy Content of Foods |
Stainless Steel Temperature Probe
|
| 17 | Energy Content of Fuels |
Stainless Steel Temperature Probe
|
| 28 | Establishing a Table of Reduction Potentials: Micro-Voltaic Cells |
Voltage Probe
|
| 11 |
Causes of Change |
Chemistry with Vernier |
2 | Freezing and Melting of Water |
Stainless Steel Temperature Probe
|
| 3 | Another Look at Freezing Temperature |
Stainless Steel Temperature Probe (2)
|
| 4 | Heat of Fusion of Ice |
Stainless Steel Temperature Probe
|
| 9 | Evaporation and Intermolecular Attractions |
Stainless Steel Temperature Probe (2)
|
| 16 | Energy Content of Foods |
Stainless Steel Temperature Probe
|
| 17 | Energy Content of Fuels |
Stainless Steel Temperature Probe
|
| 18 | Additivity of Heats of Reaction: Hess's Law |
Stainless Steel Temperature Probe
|
| 19 | Heat of Combustion: Magnesium |
Stainless Steel Temperature Probe
|
| Science with TI-Nspire Technology |
18 | Freezing and Melting of Water |
Stainless Steel Temperature Probe
|
| 20 | Evaporation and Intermolecular Attractions |
Stainless Steel Temperature Probe (2)
|
| 24 | Additivity of Heats of Reaction: Hess's Law |
Stainless Steel Temperature Probe
|
| 12 |
Gases and Liquids |
Chemistry with Vernier |
6 | Boyle's Law: Pressure-Volume Relationship in Gases |
Gas Pressure Sensor
|
| 7 | Pressure-Temperature Relationship in Gases |
|
| 9 | Evaporation and Intermolecular Attractions |
Stainless Steel Temperature Probe (2)
|
| 10 | Vapor Pressure of Liquids |
|
| Science with TI-Nspire Technology |
19 | Boyle's Law: Pressure-Volume Relationship in Gases |
Gas Pressure Sensor
|
| 20 | Evaporation and Intermolecular Attractions |
Stainless Steel Temperature Probe (2)
|
| 13 |
Solutions |
Chemistry with Vernier |
3 | Another Look at Freezing Temperature |
Stainless Steel Temperature Probe (2)
|
| 12 | Effect of Temperature on Solubility of a Salt |
Stainless Steel Temperature Probe
|
| 13 | Properties of Solutions: Electrolytes and Non-Electrolytes |
Conductivity Probe
|
| 14 | Conductivity of Solutions: The Effect of Concentration |
Conductivity Probe
|
| 15 | Using Freezing Point Depression to Find Molecular Weight |
Stainless Steel Temperature Probe
|
| 26 | Using Conductivity to Find an Equivalence Point |
|
| 27 | Acid Dissociation Constant, Ka |
pH Sensor
|
| 33 | Determining the Free Chlorine Content of Swimming Pool Water |
|
| 34 | Determining the Quantity of Iron in a Vitamin Tablet |
|
| Science with TI-Nspire Technology |
22 | Properties of Solutions: Electrolytes and Non-Electrolytes |
Conductivity Probe
|
| 23 | Conductivity of Solutions: The Effect of Concentration |
Conductivity Probe
|
| 14 |
Chemical Equilibrium |
Chemistry with Vernier |
20 | Chemical Equilibrium: Finding a Constant, Kc |
|
| 27 | Acid Dissociation Constant, Ka |
pH Sensor
|
| 15 |
Acids and Bases |
Chemistry with Vernier |
21 | Household Acids and Bases |
pH Sensor
|
| 22 | Acid Rain |
pH Sensor
|
| 23 | Titration Curves of Strong and Weak Acids and Bases |
pH Sensor
|
| 24 | Acid-Base Titration |
|
| 25 | Titration of a Diprotic Acid: Identifying an Unknown |
|
| 26 | Using Conductivity to Find an Equivalence Point |
|
| 27 | Acid Dissociation Constant, Ka |
pH Sensor
|
| 32 | The Buffer in Lemonade |
pH Sensor
|
| 35 | Determining the Phosphoric Acid Content in Soft Drinks |
pH Sensor
|
| 36 | Microscale Acid-Base Titration |
pH Sensor
|
| Science with TI-Nspire Technology |
25 | Acid Rain |
pH Sensor
|
| 16 |
Reaction Rates |
Chemistry with Vernier |
30 | Rate Law Determination of the Crystal Violet Reaction |
|
| 17 |
Electrochemistry |
Chemistry with Vernier |
28 | Establishing a Table of Reduction Potentials: Micro-Voltaic Cells |
Voltage Probe
|
| 29 | Lead Storage Batteries |
Voltage Probe
|
| 18 |
Nuclear Chemistry |
Advanced Chemistry with Vernier |
27 | α, β, and γ |
Vernier Radiation Monitor
|
| 28 | Radiation Shielding |
Vernier Radiation Monitor
|
| Nuclear Radiation with Vernier |
1 | α, β, and γ |
Vernier Radiation Monitor
|
| 2 | Distance and Radiation |
Vernier Radiation Monitor
|
| 3 | Lifetime Measurement |
Vernier Radiation Monitor
|
| 6 | Radiation Shielding |
Vernier Radiation Monitor
|