Chapter 4 Krissy Kellock Analytical Chemistry 221.

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Presentation transcript:

Chapter 4 Krissy Kellock Analytical Chemistry 221

Acids and Bases – –Bronstead-Lowry Theory – – – acids donate protons/bases accept protons » »-For a species to act as an acid a base (proton acceptor) must be present - and vice versa. » »-The species produced when an acid gives up a proton is called the conjugate base of the parent acid.

Bronstead-Lowry Theory b b Acid 1  base 1 + proton When a base accepts a proton a conjugate acid is produced. b b Base 2 + proton  acid 2 If the 2 processes are combined a neutralization reaction occurs: b b Acid 1 + base 2  base 1 + acid 2 NH 3 + H 2 O  NH OH -

Problem 4-4

Amphiprotic Solvents b b – a solvent that can act as either an acid or base depending on the solute it’s in. – – methanol, ethanol, anhydrous acetic acid and dihydrogen phosphate ion are all examples of amphiprotic solvents. – –H 2 PO H 3 O +  H 3 PO 4 + H 2 O – –H 2 PO OH -  HPO H 2 O – – zwitterions – an amphiprotic compound that is produced by a simple amino acid’s weak acid and weak base functional groups – –- zwitterions carry both a positive charge (amino group) and negative charge (carboxyl group).

Strong and Weak Acids and Bases b b Strong acids dissociate completely in water, weak acids partially dissociate yielding both parent acid and conjugate base b b Acids and bases can be anionic, cationic or neutral

Source:

Chemical Equilibrium – –There is never actually a complete conversion of reactants to product in a chemical reaction, there is only a chemical equilibrium. A chemical equilibrium state is when the ratio of concentration of reactants and products is constant. An equilibrium-constant expression is an algebraic equation that describes the concentration relationships that exist among reactants and products at equilibrium.

Chemical Equilibrium – –H 3 AsO 4 + 3I - +2H +  H 3 AsO 3 + I H 2 O – – This equilibrium reaction can be monitored as it moves to the right by the orange to red color change of the triiodide ion. Once the color becomes constant the reactants have been used up and the triiodide ion concentration is now constant.

Solubility Products, Ksp b b - The Ksp is a numerical constant that describes equilibrium in a saturated solution of a sparingly soluble ionic salt. b b - Solubility = S b b -some solid must be present in the reaction in order for a Ksp to be calculated: b b Ba(IO 3 ) 2 (s)  Ba 2+ (aq) + 2IO 3 - (aq) b b Ksp = [Ba 2+ ] [IO 3 - ] 2

Dissociation Constants - -Ka is the acid dissociation constant – –HNO 2 + H 2 O  H3O + + NO 2 - – –Ka = [H3O + ][NO 2 - ]/ [HNO 2 ] - -Kb is the base dissociation constant – –NH 3 + H 2 O  NH OH - – –Kb = ([NH 4 + ][OH - ]) / [NH 3 ]

Problem 4-16 b b # mmol IO 3 - = 50 ml (.300M) = 1.9x10 -3 –) –)# mmol PdCl 6 2- = 50 ml (.400 mmol/ml) = 20 mmol – –# mmol excess K + = 20 mmol – 2(5mmol) = 10 mmol [K + ] = 10 mmol K + / 50 ml = M –) –)# mmol PdCl 6 2- = 50 ml (.200M) = 10 mmol – –S = [PdCl 6 2- ] = ½ [K + ] = Ksp = [K + ] 2 [PdCl 6 2- ] = (2S) 2 (S) = 4S 3 = 6x10 -6 – –S = 1.14x10 -2 K + = 2S = 2.2x10 -2 M –) –)# mmol PdCl 6 2- added = 50 ml (.400M) = 20 mmol – –# mmol excess PdCl 6 2- = 20 mmol – ½(20 mmol) = 10 mmol [PdCl 6 2- ] = 10 mmol/ 100 ml + S ≈ S = M [K + ] = 2S[K + ] 2 [PdCl 6 2- ] = 6x10 -6 = 4S 2 (0.100 M)S = √1.5x10 -5 = 3.9x10 -3 M