Chapter 9 - Solutions Flashcards

1
Q

What molar solubility is makes solutes soluble?

A

Above 0.1M in solution

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2
Q

Seven solubility rules

A
  1. All salts containing NH4+ and alkali metal (group 1) cations
  2. All salts with NO3- and acetate anions are water soluble
  3. Halides (Cl-, Br-, I-) excluding fluorides are soluble exceptions when formed with Ag, Pb and Hg
  4. all salts of SO4- are soluble, **except Ca, Sr, Ba, Pb
  5. All metal oxides INSOLUBLE , **except when formed w alkali metals, NH4+, CaO, SrO, BaO
  6. All OH are insoluble
    * *except if formed with alkali metals, NH4, Ca, Sr, Ba
  7. Alll carbonates (CO3), PO4, S2- , SO3, are INSOLUBLE, except when w alkali metals and NH4
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3
Q

Are salts of group 1 metals and nitrate salts soluble or insoluble?

A

SOLUBLE!!!!

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4
Q

Percent composition by mass

A

(Mass solute/mass solution) x 100%

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5
Q

Mole fraction

A

Xa = moles of a / total moles

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6
Q

Molality

A

m = moles of solute / kg of solvent

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7
Q

Normality

A

(N) equivalents of interest PER LITER OF SOLUTION

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8
Q

What is the first step for any mcat solution equilibrium or solution stoich question ?

A

write the BALANCED EQUATION!!

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9
Q

What is the solubility product constant

A

Ksp = [A^n+]^m[B^m

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10
Q

What is the ion product?

A

Essentially the same as Ksp (same equation) but rather than using the concentrations at eq you use the current concentrations

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11
Q

What if IP > Ksp?

A

Supersaturated…precipitation will occur

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12
Q

IP < Ksp

A

Solute will continue to dissolve

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13
Q

IP = Ksp

A

Solution is at equilibrium

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14
Q

Molar solubility

A

Molarilty of a solution at equilibrium

**ksp doesn’t change!! (Only temp can change it)

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15
Q

COMMON ION EFFECT

A

Molar solubility is reduced

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