HCl
Cl-
NaBr
RbCl
NaF
Neutral
Neutral
Basic
CH4 or NH3
NH3; electronegativity
_______ can be an acid, or a base
water
Calculate the [H3O+] concentration of 0.72 HCl.
0.72
OH-
H2O
Na2CO3
KI
Basic
Neutral
HCl or HBr
HBr; atomic radius
Bases ____ a proton from an acid
Calculate the pH of 0.72 HCl.
0.14
CH3COOH
CH3COO-
NH4Br
CaCl
Acidic
Acidic
H2SO4 or H3PO4
H2SO4; electronegativity
A ______ acid is more likely to have a lower pH value than a _____ acid
strong; weak
Calculate the pH of a buffer solution with 0.25 M NaCN and 0.17 M HCN at 25 degrees Celsius.
Ka=6.4 E -4
3.4
NH3
NH4+
CsCl
BeBr
Neutral
Acidic
HBrO or HBrO2
HBrO2; more oxygens= more electron density away from H
______ bases release an OH- into solution, while ______ bases accept a H+ from an acid
arrhenius; bronsted
Calculate the ratio of base to acid needed to make a CH3COOH/NaCH3COOH buffer with a pH of 4.84.
1.25:1
CH3CH2NH2
CH3CH2NH3+
MgClO4
FeNO3
BaSO4
Acidic
Acidic
Neutral
Chloric acid or chlorous acid?
Chloric acid, more oxygens
HClO4 is a ______ acid than H2SO4, because of ________
stronger; electronegativity
Calculate the pH of a buffer solution with 0.36 M NH3 and 0.27 M NH4Cl at 25 degrees Celsius in a 1 L solution Kb= 1.57 E -5.
Calculate the pH after adding 0.1 mol LiOH. Assume no change in volume. Then, calculate the change in pH. Make the chemical equation and ice tables for both steps.
9.32
9.63
change= 0.32