Answer to Question #99999 in Chemistry for Sarah

A. No NaOH is added

"c(H^+)=c(HNO3) = 0.200 M"

"pH = -log_{10}[H^+]=-log_{10}(0.200) = 0.699"

B. 10 mL of NaOH are added

"n(HNO3) = c\\times V = 0.200\\times0.040= 0.008 mol"

"n(NaOH) = c\\times V = 0.100\\times 0.010 = 0.001 mol"

According to equation mole ratio "n(NaOH):n(HNO3) = 1:1" , then moles of HNO3 used for reaction are "n(HNO3) = n(NaOH) = 0.001 mol" , moles left after titration are "n(HNO_3)_{left} = 0.008-0.001 = 0.007 mol"

"c(H^+)= \\frac{n}{V} = \\frac{0.007}{0.04+0.01} = 0.14 M"

"pH = -log_{10}(0.14) = 0.854"

C. 40 .0 mL NaOH are added

"n(HNO3) = 0.008 mol"

"n(NaOH) = c\\times V = 0.1\\times 0.04 = 0.004 mol"

According to equation mole ratio n(NaOH):n(NaOH) , then moles of HNO3 used for reaction are n(HNO3) = n(NaOH) = 0.004 mol, moles left after titration are

"n(HNO_3)_{left} = 0.008-0.004 = 0.004 mol"

"c(H^+) = \\frac{n}{V} = \\frac{0.004}{0.04+0.04} = 0.05 M"

"pH = -log_{10}(0.05) = 1.3"

D. 80 mL of NaOH are added

"n(HNO3) = 0.008 mol"

"n(NaOH) = c\\times V = 0.1\\times 0.08=0.008 mol"

According to equation mole ratio n(NaOH):n(NaOH)=1:1 , then moles of HNO3 used for reaction are n(HNO3) = n(NaOH) = 0.008 mol, moles left after titration are

"n(HNO_3)_{left} = 0.008-0.008 = 0"

pH is determined by the "H^+" ions produced by the water dissosiation

"[H^+] = 1\\times 10^{-7} M"

"pH = -log_{10}(1\\times10^{-7}) = 7"

E. 100 mL of NaOH are added

"n(HNO3) = 0.008 mol"

"n(NaOH) = 0.1\\times 0.1 = 0.01 mol"

Moles of NaOH left:

"n(NaOH)_{left} = 0.01-0.008 = 0.002 mol"

"n(OH^-) = n(NaOH) = 0.002 mol"

"c(OH^-) = \\frac{n}{V} = \\frac{0.002} {0.04+0.1} = 0.0143 M"

"pOH = -log_{10}[OH^-] = -log_{10}(0.0143) = 1.845"

As pH + pOH =14, then pH = 14-1.845 = 12.15