Read
Chapter 16.2, pp 506 - 510
Do
Problems 13, 15, 16
Ice Cream Lab!
If you don't bring in your supplies, you may not get any ice cream!
Thursday, March 15, 2018
Wednesday, March 14, 2018
Homework/Agenda for Thursday 3.15.18
Chapter 15 Homework Harvest
Do Chapter 16 HW on new piece of paper!
Read
Chapter 16.1, pp 503-506
Do
Problems 3, 7bd, 8bc, 11bd, 12, bd
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| The Death of Caesar (1798) by Vincenzo Camuccini |
Thursday, March 8, 2018
Homework due 3.9.18
Henry's Law
Homework
Henry's law is one of the gas laws formulated by William Henry in 1803 and states: "At a constant temperature, the amount of a given gas that dissolves in a given type and volume of liquid is directly proportional to the partial pressure of that gas in equilibrium with that liquid." An equivalent way of stating the law is that the solubility of a gas in a liquid is directly proportional to the partial pressure of the gas above the liquid:
C=kPgas
where
- C is the solubility of a gas at a fixed temperature in a particular solvent (in units of M or mL gas/L)
- k is Henry's law constant (often in units of M/atm)
- Pgas is the partial pressure of the gas (often in units of atm)
Homework
Do
Problems 53, 55, 57bd, 58bc
[note: there are potentially good quiz questions in tonight's homework!]
Wednesday, March 7, 2018
homework due 3.8.18
Read
Chapter 15.10, pp 495 - 496
Do
Problems 50, 51, 59
Calculation of Freezing Point Depression
Chapter 15.10, pp 495 - 496
Do
Problems 50, 51, 59
Calculation of Freezing Point Depression
If the solution is treated as an ideal solution, the extent of freezing-point depression depends only on the solute concentration that can be estimated by a simple linear relationship with the cryoscopic constant ("Blagden's Law"):
- ΔTF = KF · b · i,
where:
- ΔTF, the freezing-point depression, is defined as TF (pure solvent) − TF (solution).
- KF, the cryoscopic constant, which is dependent on the properties of the solvent, not the solute. (Note: When conducting experiments, a higher KF value makes it easier to observe larger drops in the freezing point. For water, KF = 1.853 K·kg/mol.[7])
- b is the molality (moles solute per kilogram of solvent)
- i is the van 't Hoff factor (number of ion particles per individual molecule of solute, e.g. i = 2 for NaCl, 3 for BaCl2)
Tuesday, March 6, 2018
Homework for Wednesday 3.7.18
Read
Chapter 15.8, 15.9, pp 488-495
Do
Problems 39, 41bd, 44bc, 48, pg 501
note: The topic of Normality is considered 'extra credit.'
Chapter 15.8, 15.9, pp 488-495
Do
Problems 39, 41bd, 44bc, 48, pg 501
note: The topic of Normality is considered 'extra credit.'
Monday, March 5, 2018
Homework/Agenda for Tuesday 3.6.18
Homework Harvest on Tuesday for Chapters 13, 14
Read
Chapter 15.7, pp 485 - 488
Do
Problems 35, 37, pg 500
Read
Chapter 15.7, pp 485 - 488
Do
Problems 35, 37, pg 500
Thursday, March 1, 2018
Homework/Agenda for Monday 3.5.18
Read
Chapter 15.6, pp 481 - 485
Do
Problems 31b, 32, 34, pg 500
Homework Harvest on Tuesday for Chapters 13, 14
Chapter 15.6, pp 481 - 485
Do
Problems 31b, 32, 34, pg 500
Homework Harvest on Tuesday for Chapters 13, 14
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