Câu 1:

\(n_{NaCl}=\dfrac{5,85}{58,5}=0,1\left(mol\right)\Rightarrow C_{M_{ddNaCl}}=\dfrac{0,1}{0,1}=1M\)

\(n_{KOH}=\dfrac{5,6}{56}=0,1\left(mol\right)\Rightarrow C_{M_{ddKOH}}=\dfrac{0,1}{0,1}=1M\)

\(n_{CaCl_2}=\dfrac{11,1}{111}=0,1\left(mol\right)\Rightarrow C_{M_{ddCaCl_2}}=\dfrac{0,1}{0,1}=1M\)

Câu 2:

a,\(n_{Ba\left(OH\right)_2}=0,2.1,5=0,3\left(mol\right)\)

b,\(C\%_{ddHCl}=\dfrac{0,2.36,5.100\%}{200}=3,65\%\)

  \(C\%_{ddH_2SO_4}=\dfrac{0,1.98.100\%}{200}=4,9\%\)

\(CM_{HCl\left(sau\right)}=\dfrac{n}{V}=\dfrac{0,1.2+0,2.2}{0,1+0,2}=2M\)

Bài 1:

a) CuSO₄ + 2NaOH → Na₂SO₄ + Cu(OH)₂↓

\(n_{CuSO_4}=\dfrac{16}{160}=0,1\left(mol\right)\)

\(n_{NaOH}=\dfrac{12}{40}=0,3\left(mol\right)\)

Theo PT: \(n_{CuSO_4}=\dfrac{1}{2}n_{NaOH}\)

Theo bài: \(n_{CuSO_4}=\dfrac{1}{3}n_{NaOH}\)

Vì \(\dfrac{1}{3}< \dfrac{1}{2}\) ⇒ NaOH dư

b) Theo PT: \(n_{Cu\left(OH\right)_2}=m_{CuSO_4}=0,1\left(mol\right)\)

\(\Rightarrow m_{Cu\left(OH\right)_2}=0,1\times98=9,8\left(g\right)\)

c) \(\Sigma V_{dd}saupư=40+60=100\left(ml\right)=0,1\left(l\right)\)

Theo PT: \(n_{NaOH}pư=2n_{CuSO_4}=2\times0,1=0,2\left(mol\right)\)

\(\Rightarrow n_{NaOH}dư=0,3-0,2=0,1\left(mol\right)\)

\(\Rightarrow C_{M_{NaOH}}dư=\dfrac{0,1}{0,1}=1\left(M\right)\)

Theo PT: \(n_{Na_2SO_4}=n_{CuSO_4}=0,1\left(mol\right)\)

\(\Rightarrow C_{M_{Na_2SO_4}}=\dfrac{0,1}{0,1}=1\left(M\right)\)

Bài 2:

ZnCl₂ + 2NaOH → 2NaCl + Zn(OH)₂↓ (1)

\(n_{ZnCl_2}=0,3\times1,5=0,45\left(mol\right)\)

\(n_{NaOH}=0,1\times1=0,1\left(mol\right)\)

Theo PT1: \(n_{ZnCl_2}=\dfrac{1}{2}n_{NaOH}\)

Theo bài: \(n_{ZnCl_2}=\dfrac{9}{2}n_{NaOH}\)

Vì \(\dfrac{9}{2}>\dfrac{1}{2}\) ⇒ ZnCl₂ dư

a) \(\Sigma V_{dd}saupư=300+100=400\left(ml\right)=0,4\left(l\right)\)

Theo PT1: \(n_{ZnCl_2}pư=\dfrac{1}{2}n_{NaOH}=\dfrac{1}{2}\times0,1=0,05\left(mol\right)\)

\(\Rightarrow n_{ZnCl_2}dư=0,45-0,05=0,4\left(mol\right)\)

\(\Rightarrow C_{M_{ZnCl_2}}dư=\dfrac{0,4}{0,4}=1\left(M\right)\)

Theo PT1: \(n_{NaCl}=n_{NaOH}=0,1\left(mol\right)\)

\(\Rightarrow C_{M_{NaOH}}=\dfrac{0,1}{0,4}=0,25\left(M\right)\)

b) Zn(OH)₂ \(\underrightarrow{to}\) ZnO + H₂O (2)

Theo pT1: \(n_{Zn\left(OH\right)_2}=\dfrac{1}{2}n_{NaOH}=\dfrac{1}{2}\times0,1=0,05\left(mol\right)\)

Theo pT2: \(n_{ZnO}=n_{Zn\left(OH\right)_2}=0,05\left(mol\right)\)

\(\Rightarrow m_{ZnO}=0,05\times81=4,05\left(g\right)\)

c) NaOH + HCl → NaCl + H₂O (3)

Theo PT: \(n_{HCl}=n_{NaOH}=0,1\left(mol\right)\)

\(\Rightarrow m_{HCl}=0,1\times36,5=3,65\left(g\right)\)

\(\Rightarrow m_{ddHCl}=\dfrac{3,65}{25\%}=14,6\left(g\right)\)

a) CuSO₄ + 2NaOH → Na₂SO₄ + Cu(OH)₂↓

\(n_{CuSO_4}=\dfrac{16}{160}=0,1\left(mol\right)\)

\(n_{NaOH}=\dfrac{12}{40}=0,3\left(mol\right)\)

Theo pT: \(n_{CuSO_4}=\dfrac{1}{2}n_{NaOH}\)

theo bài: \(n_{CuSO_4}=\dfrac{1}{3}n_{NaOH}\)

Vì \(\dfrac{1}{3}< \dfrac{1}{2}\) ⇒ NaOH dư

b) Theo pT: \(n_{Cu\left(OH\right)_2}=n_{CuSO_4}=0,1\left(mol\right)\)

\(\Rightarrow m_{Cu\left(OH\right)_2}=0,1\times98=9,8\left(g\right)\)

c) \(\Sigma V_{dd}saupư=40+60=100\left(ml\right)=0,1\left(l\right)\)

Theo PT: \(n_{NaOH}pư=2n_{CuSO_4}=2\times0,1=0,2\left(mol\right)\)

\(\Rightarrow n_{NaOH}dư=0,3-0,2=0,1\left(mol\right)\)

\(\Rightarrow C_{M_{NaOH}}=\dfrac{0,1}{0,1}=1\left(M\right)\)

Theo PT: \(n_{Na_2SO_4}=n_{CuSO_4}=0,1\left(mol\right)\)

\(\Rightarrow C_{M_{Na_2SO_4}}=\dfrac{0,1}{0,1}=1\left(M\right)\)

a) CuSO₄ + 2NaOH \(\rightarrow\) Na₂SO₄ + Cu(OH)₂

b) \(n_{CuSO_4}=\dfrac{16}{160}=0,1\left(mol\right)\)

\(n_{NaOH}=\dfrac{12}{40}=0,3\left(mol\right)\)

CuSO₄ + 2NaOH \(\rightarrow\) Na₂SO₄ + Cu(OH)₂

=> NaOH dư, CuSO₄ hết

=> \(n_{Cu\left(OH\right)_2}=0,1\left(mol\right)\)

=> \(n_{Cu\left(OH\right)_2}=0,1.98=9,8\left(g\right)\)

c) 40ml = 0,04 lít; 60ml = 0,06 lít

=> V_dd sau phản ứng là: 0,04 + 0,06 = 0,1 lít

Lại có: \(n_{Na_2SO_4}=0,1\left(mol\right)\),\(n_{Cu\left(OH\right)_2}=0,1\left(mol\right)\)

=> C_M của Na₂SO₄ là:\(\dfrac{n}{V}=\) \(\dfrac{0,1}{0,1}=1M\)

C_M của Cu(OH)₂ là: \(\dfrac{0,1}{0,1}=1M\)

Đặt \(n_{H_2SO_4}=a\left(mol\right)\rightarrow n_{HCl}=3a\left(mol\right)\)

\(n_{NaOH}=0,05.0,5=0,025\left(mol\right)\)

PTHH:

\(H_2SO_4+2NaOH\rightarrow Na_2SO_4+2H_2O\)

a--------->2a

\(HCl+NaOH\rightarrow NaCl+H_2O\)

3a----->3a

\(\rightarrow2a+3a=0,025\\ \Leftrightarrow a=0,005\left(mol\right)\\ \rightarrow\left\{{}\begin{matrix}C_{M\left(H_2SO_4\right)}=\dfrac{0,005}{0,1}=0,05M\\C_{M\left(HCl\right)}=\dfrac{0,005.3}{0,1}=0,15M\end{matrix}\right.\)

a/ Gọi nồng độ mol của  lần lượt là 2a, a (mol/l)

Khi đó: 

=> n_H⁺ =

H⁺ + OH^- ------> H2O

Theo PT ta được: 

Vậy nồng độ mol của  lần lượt là: 0,4; 0,2 (M)

b/ n_H⁺ 

+) Dung dịch B gồm: 

PTHH: H⁺ + OH^- ------> H2O

Theo PT:  n_H⁺ = n _OH^- =

Vậy dung dịch C còn dư axit ⇒ có tính axit.

c/ Gọi thể tích dung dịch B cần cho để tạo được dung dịch D trung hòa là: V (l)

Ta có:  n_H⁺ = n _OH^- 

 Lượng dung dịch  cần thêm là: