• Water forms hydration shells around ions and polar solutes
• Hydrogen bonding and charge attraction reduce free water movement
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
2
Learning objective
D2.3.2—Water movement
New
• Water moves by osmosis across partially permeable membranes
• It moves from hypotonic/lower solute solutions toward hypertonic/higher solute solutions
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
3
Learning objective
D2.3.3—Osmosis into/out of cells
New
• Osmosis direction depends on internal and external solute concentration
• Isotonic conditions have dynamic water movement but no net osmosis
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
4
Learning objective
D2.3.4—Changes in plant tissue
New
• Plant tissue changes mass or length when placed in sucrose solutions
• Percentage change graphs estimate isotonic/osmotic concentration
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
5
Learning objective
D2.3.5—Effects on cells without wall
New
• Animal cells can lyse in hypotonic solutions and crenate in hypertonic solutions
• Freshwater protists use contractile vacuoles to expel excess water
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
6
Learning objective
D2.3.6—Effects on cells with wall
New
• Plant cells become turgid in hypotonic solutions as vacuoles swell
• Hypertonic solutions cause flaccidity and plasmolysis from water loss
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
7
Learning objective
D2.3.7—Medical applications
New
• Isotonic saline prevents harmful water gain or loss in body cells
• IV fluids and transplant organ baths must match tissue osmotic concentration
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
8
Learning objective
D2.3.8 (HL)—Water potential
New
• Water potential is potential energy of water per unit volume, measured in kPa
• Pure water at standard conditions has water potential of 0 kPa
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
9
Learning objective
D2.3.9 (HL)—Movement from higher to lower potential
New
• Water moves from higher water potential to lower water potential
• Solutes lower water potential by restricting water molecule movement
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
10
Learning objective
D2.3.10 (HL)—Solute and pressure potential
New
• Water potential equals solute potential plus pressure potential
• Solute potential is zero or negative; pressure potential is often positive in walled cells
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.
11
Learning objective
D2.3.11 (HL)—Water potential in plant tissue
New
• Water entering plant cells increases pressure potential and dilutes solutes
• Water leaving plant cells lowers pressure potential and makes solute potential more negative
0%
Mastery
0
Attempts
0
Mistakes
Start with the concept explanation, then practise to create mastery evidence.