- Ph Vs Mlnaoh Added You Have To Factor In Dilution At This Point Whenever Base Volume Is Added The Concentration Chang 1 (170.78 KiB) Viewed 48 times
- Ph Vs Mlnaoh Added You Have To Factor In Dilution At This Point Whenever Base Volume Is Added The Concentration Chang 2 (31.96 KiB) Viewed 48 times
- Ph Vs Mlnaoh Added You Have To Factor In Dilution At This Point Whenever Base Volume Is Added The Concentration Chang 3 (108.04 KiB) Viewed 48 times
- Ph Vs Mlnaoh Added You Have To Factor In Dilution At This Point Whenever Base Volume Is Added The Concentration Chang 4 (113.23 KiB) Viewed 48 times
pH vs. mLNaOH added
You have to factor in dilution at this point, whenever base volume is added, the concentration changes even before reaction. Also, note: when base is added it removes from the concentration of the acid and creates conjugate base. 4) same issues as (3)
3) Ka at 1/2 equivalence (or midpoint) of NaOH Equivalence point would be 17.0/2=8.5 mL, and pH=4.73 Ka=(0.170−x)x2pH=−log[H+]→[H+]=10−pH=10−4.73=0.0000186=xKa=(0.170−0.0000186)0.00001862=2.2∗10−8
4) Ka at 10 mL added NaOH Ka=(0.175−x)x2 pH is around 4.9 pH=−log[H+]→[H+]=10−pH=10−4.9=1.26∗10−5=x Ka=(0.00175−1.26∗10−5)0.00001262=9.14∗10−8