Gases
IMF's, Solutions, & Aqueous Equilibria
Kinetics
Thermodynamics
Electrochemistry
100

This variable must always be in Kelvin when using gas laws.

 What is temperature?

100

This intermolecular force occurs when H is bonded to N, O, or F.

What is hydrogen bonding?

100

This factor increases reaction rate by providing an alternate pathway.

What is a catalyst?

100

This thermodynamic quantity describes heat flow at constant pressure.

What is enthalpy (ΔH)?

100

This process always occurs at the cathode.

What is reduction?

200

This law explains why increasing the amount of gas in a rigid container increases pressure.

What is the Ideal Gas Law?

200

Adding NaCl to water slightly decreases its freezing point because of this solution property.

What is colligative properties?

200

This diagram shows activation energy and reaction enthalpy.

What is a reaction energy diagram?

200

A process that increases disorder has this sign for ΔS.

What is positive?

200

A galvanic cell converts this form of energy into electrical work.

What is chemical energy?

300

A 2.50 mol sample of gas occupies 10.0 L at 298 K. This is the pressure in atm.

What is 6.12 atm?
(PV = nRT)

300

Given Ksp = 1.8 × 10⁻¹⁰ for AgCl, this is the molar solubility in pure water.

What is 1.3 × 10⁻⁵ M?

300

If rate = k[A]² and [A] doubles, the rate increases by this factor.

What is 4?

300

Using given ΔH values, calculate ΔH for the target reaction.

What is −76 kJ?

300

Calculate E°cell given E°cathode = +0.80 V and E°anode = −0.44 V.

What is +1.24 V?

400

Gas collected over water has a total pressure of 755 mmHg at 25 °C. Given water vapor pressure = 23.8 mmHg, this is the pressure of the dry gas.

What is 731 mmHg?
(Dalton’s Law)

400

The solubility of AgCl in 0.10 M NaCl compared to pure water is this.

What is smaller due to the common‑ion effect?
(Work involves ICE table and Ksp)

400

A first‑order reaction has k = 0.025 min⁻¹. This is the half‑life.

What is 27.7 minutes?

400

Calculate ΔG at 298 K given ΔH = −75 kJ and ΔS = −110 J/mol·K.

What is −42 kJ?

400

Calculate ΔG for a cell where n = 2 and E°cell = 1.10 V.

What is −212 kJ/mol?

500

At 25 °C, the Henry’s Law constant for O₂ is 1.3 × 10⁻³ mol·L⁻¹·atm⁻¹. At a partial pressure of 0.80 atm, this is the concentration of dissolved O₂.

What is 1.0 × 10⁻³ M?

500

Calculate the pH of a buffer containing 0.30 M acetic acid and 0.20 M acetate (Ka = 1.8 × 10⁻⁵).

What is pH = 4.56?
(Henderson–Hasselbalch)

500

A reaction has low activation energy but positive ΔG. This explains why the reaction occurs quickly but does not go to completion.

What is kinetics does not determine spontaneity?

500

Given ΔG° = −8.5 kJ/mol, calculate K at 298 K.

What is K ≈ 30?
(ΔG° = −RT ln K)

500

Calculate Ecell at 25 °C given E°cell = 1.10 V and Q = 0.010.

What is 1.16 V?