What is the conjugate base of water when water acts as an acid?
OH-
What is the conjugate acid of water when water acts as an base?
H3O+
1) predict the products
2) balance the equation
Na + H2SO4 --> ?
2Na + H2SO4 --> Na2SO4 + H2
Metal + Acid --> Salt + H2
Single replacement reaction
The pH of a solution changes from 8 to 9.
A. the concentration of OH- decreases by 1 mole/L
B. the concentration of OH- decreases by 10 mol/L
C. the concentration of OH- increases by 1 mole/L
D. the concentration of OH- increased by 10 mole/L
D
The pH of a solution changes from 8 to 9.
The pH scale is logarithmic. every increase is a 10x change in concentration
8 --> 9 is getting more basic. [OH-] INCREASED
Describe the color of phenolphthalein in different conditions.
Acidic - clear
Basic - prettiest pink around
What is both the Bronsted-Lowry Definition and Arrhnius definition of an acid?
Proton donor
or
Releases H+ ions into solution
What is the Arrhenius definition of a base?
What is the Bronsted Lowry definition of a base?
Can't remember which one is which? Say them both at least.
A: Releases OH- ions
BL: H+ acceptor; takes H+ out of solution
1) Predict the products
2) balance the equation
HCl + BaCO3 --> ?
2HCl + BaCO3 --> BaCl2 + H2O + CO2
Acid + carbonate --> salt + H2O + CO2
What is the concentration of H+ is in a solution that has a pH of 9.4?
UNITS ON YOUR ANSWER
3.98 x 10-10 M or mol H+/L
[H+] = 10-pH
WHY did we stop titrations at a pale pink color? Describe what is happening at the molecular level at that exact point in time.
At the equivalence point.
H+ ions equal to OH- ions; pH 7
Give a number range.
Less than 7.
0-7
What side of the pH scale is basic? Give a range.
More than 7.
7-14
1) Predict the Products
2) Balance the equation
H3PO4 + Ca(OH)2 --> ?
2 H3PO4 + 3 Ca(OH)2 --> Ca3(PO4)2 + 6 H2O
Acid + Base --> Salt + H2O
What is the concentration of H+ in a solution with a pOH of 3.2?
1.58 x 10-11
14 = pH + pOH
if pOH = 3.2, pH = 10.8
[H+] = 10-pH
2HCl + Ca(OH)2 --> H2O + CaCl2
When HCl is titrated with Ca(OH)2, it releases 0.034 moles of H+ ions. How many moles of OH- ions are in the solution when it turns pale pink?
0.034 moles of OH- ions
It will take 2 moles of HCl to neutralize 1 mole of Ca(OH)2, but the H+ ions still = OH- ions at equivalence
Describe the bond holding the hydrogen ion to the bromate ion.
HBrO3
Acid strong/weak? Bond strong/weak?
Weak acid, so it has a stronger bond.
In solution, all the H+ ions will NOT all fall off and could reattach
<--> use double headed arrows
Describe the bond holding the hydroxide ion to the sodium ion.
NaOH
base strong/weak? Bond strong/weak?
Strong base, so it has a weaker bond.
In solution, all the OH- ions will fall off and NOT reattach
--> use single headed arrows
When do you use normal arrows? -->
When do you use equilibrium or double-headed arrows? <-->
normal - when the A/B does not reattach (STRONG acids/bases)
double headed - when the H+ or OH- could reattach (WEAK acids/bases)
You have 50 mL of HCl at a pH of 5.
You dilute it with 100 mL of water.
What is the pH of your new diluted solution?
1) how much H+ did you start with?
[H+] = 10-5 = 1x10-5 mol H+/L
1x10-5 mol H+/L * 0.05 L = 5*10-7 mol H+
2) We diluted the solution with 100mL, so the new solution has a total volume of 150 mL, or 0.15L
3) find new [H+]. Take moles H+, divide by L solution [H+] = 5*10-7 / 0.15L = 3.33*10-6 M
4) Find pH pH = -log[H+] = -log[3.33*10-6 M]
pH = 5.48
What is the molarity of a KOH solution if 25 mL of it is neutralized by 31.7 mL of a 0.1 M HNO3 solution?
MaVa=MbVb Since 1:1 H+ to OH- ratio
(0.1)(31.7)=Mb(25)
Mb = 0.13 M
Identify the acid/base/conjugate acid/conjugate base
HPO42- + H2O <--> H2PO4- + OH-
Acid: H2O Conjugate Base: OH-
Base: HPO42- Conjugate Acid: H2PO4-
Identify the acid/base/conjugate acid/conjugate base
H3PO4 + NH3 <--> NH4+ + H2PO4-
Acid: H3PO4 Conjugate Base: H2PO4-
Base: NH3 Conjugate Acid: NH4+
What is one way you can distinguish between strong and weak acids or bases?
reaction rate: strong = faster reaction
conductivity: strong = more conductive
pH: strong will be more acidic or more basic
What does the pH scale actually measure?
How much H+ is in a solution.
[H+]
H2SO4 + 2KOH --> 2H2O + K2SO4
A 25mL sample of H2SO4 is neutralized by 27.4 mL of 1M KOH. What is the concentration of the acid?
Cannot use MaVa=MbVb
Start calculations with 27.4 mL KOH....
0.0274 mol OH- and H+
0.0137 mol H2SO4 / 0.025 L H2SO4 = 0.548 M H2SO4