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a, \(2NaOH+CuSO_4\rightarrow Na_2SO_4+Cu\left(OH\right)_2\)
\(Cu\left(OH\right)_2\underrightarrow{t^o}CuO+H_2O\)
b, \(m_{CuSO_4}=250.16\%=40\left(g\right)\Rightarrow n_{CuSO_4}=\dfrac{40}{160}=0,25\left(mol\right)\)
Theo PT: \(n_{CuO}=n_{Cu\left(OH\right)_2}=n_{CuSO_4}=0,25\left(mol\right)\)
\(\Rightarrow a=m_{CuO}=0,25.80=20\left(g\right)\)
c, Ta có: m dd sau pư = m dd NaOH + m dd CuSO4 - mCu(OH)2 = 200 + 250 - 0,25.98 = 425,5 (g)
a)
$BaCl_2 + H_2SO_4 \to BaSO_4 + 2HCl$
$n_{BaCl_2} = 0,1 < n_{H_2SO_4} = 0,2$ nên $H_2SO_4$ dư
$n_{BaSO_4} = n_{BaCl_2} = 0,1(mol)$
$m_{BaSO_4} = 0,1.233 = 23,3(gam)$
b)
A gồm :
$HCl : 0,1.2 = 0,2(mol)$
$H_2SO_4\ dư : 0,2 - 0,1 = 0,1(mol)$
$V_{dd} = 0,1 + 0,1= 0,2(lít)$
$C_{M_{HCl}} = \dfrac{0,2}{0,2} = 1M$
$C_{M_{H_2SO_4}} = \dfrac{0,1}{0,2} = 0,5M$
c)
$2NaOH + H_2SO_4 \to Na_2SO_4 + 2H_2O$
$n_{NaOH} = 2n_{H_2SO_4\ dư} = 0,2(mol)$
$m_{dd\ NaOH} = \dfrac{0,2.40}{15\%} = 53,33(gam)$
\(CuSO_4+2NaOH->Cu\left(OH\right)_2+Na_2SO_4\)
bđ 0,1 0,25
pư 0,1............0,2...............0,1
spu 0...............0,05.............0,1
\(Cu\left(OH\right)_2-^{t^o}>CuO+H_2O\)
0,1.........................0,1
m CuO = 0,1.(64+16)=8g
a) \(n_{NaOH}=\dfrac{20}{40}=0,5\left(mol\right)\)
\(CuCl_2+2NaOH\rightarrow Cu\left(OH\right)_2+2NaCl\)
Lập tỉ lệ : \(\dfrac{0,2}{1}< \dfrac{0,5}{2}\)=> Sau phản ứng NaOH dư
\(n_{Cu\left(OH\right)_2}=n_{CuCl_2}=0,2\left(mol\right)\)
Dung dịch nước lọc gồm NaCl (0,4_mol); NaOH dư ( 0,1 mol)
\(Cu\left(OH\right)_2-^{t^o}\rightarrow CuO+H_2O\)
\(n_{CuO}=n_{Cu\left(OH\right)_2}=0,2\left(mol\right)\)
\(a=m_{CuO}=0,2.80=16\left(g\right)\)
b) \(m_{NaCl}=0,4.58,5=23,4\left(g\right);m_{NaOH}=0,1.40=4\left(g\right)\)
\(n_{CuSO_4}=\dfrac{200.16}{160.100}=0,2mol\)
\(n_{NaOH}=\dfrac{200.10}{40.100}=0,5mol\)
CuSO4+2NaOH\(\rightarrow\)Cu(OH)2\(\downarrow\)+Na2SO4
-Ta có tỉ lệ: \(\dfrac{0,2}{1}< \dfrac{0,5}{2}\rightarrow\)CuSO4 hết, NaOH dư.
Cu(OH)2\(\overset{t^0}{\rightarrow}\)CuO+H2O
\(n_{CuO}=n_{Cu\left(OH\right)_2}=n_{CuSO_4}=0,2mol\)
a=\(m_{CuO}=0,2.80=16gam\)
\(m_{Cu\left(OH\right)_2}=0,2.98=19,6gam\)
\(n_{NaOH\left(pu\right)}=2n_{CuSO_4}=0,4mol\rightarrow n_{NaOH\left(dư\right)}=0,5-0,4=0,1mol\)
\(m_{NaOH\left(dư\right)}=0,1.40=4gam\)
\(n_{Na_2SO_4}=n_{CuSO_4}=0,2mol\rightarrow m_{Na_2SO_4}=0,2.136=27,2gam\)
\(m_{dd}=200+200-19,6=380,4gam\)
C%NaOH=\(\dfrac{4.100}{380,4}\approx1,05\%\)
C%Na2SO4=\(\dfrac{27,2.100}{380,4}\approx7,15\%\)
a. PTHH: 3NaOH + AlCl3 ---> Al(OH)3↓ + 3NaCl (1)
Ta có: \(C_{\%_{NaOH}}=\dfrac{m_{NaOH}}{100}.100\%=12\%\)
=> mNaOH = 12(g)
=> \(n_{NaOH}=\dfrac{12}{40}=0,3\left(mol\right)\)
Ta lại có: \(C_{\%_{AlCl_3}}=\dfrac{m_{AlCl_3}}{200}.100\%=13,35\%\)
=> \(m_{AlCl_3}=26,7\left(g\right)\)
=> \(n_{AlCl_3}=\dfrac{26,7}{133,5}=0,2\left(mol\right)\)
Ta thấy: \(\dfrac{0,3}{3}< \dfrac{0,2}{1}\)
Vậy AlCl3 dư
Theo PT(1): \(n_{Al\left(OH\right)_3}=\dfrac{1}{3}.n_{NaOH}=\dfrac{1}{3}.0,3=0,1\left(mol\right)\)
=> \(m_{Al\left(OH\right)_3}=0,1.78=7,8\left(g\right)\)
b. Ta có: \(m_{dd_{NaCl}}=12+200-7,8=204,2\left(g\right)\)
Theo PT(1): \(n_{NaCl}=n_{NaOH}=0,3\left(mol\right)\)
=> \(m_{NaCl}=0,3.58,5=17,55\left(g\right)\)
=> \(C_{\%_{NaCl}}=\dfrac{17,55}{204,2}.100\%=8,59\%\)
c. PTHH: 2Al(OH)3 ---to---> Al2O3 + 3H2O (2)
Theo PT(2): \(n_{Al_2O_3}=\dfrac{1}{2}.n_{Al\left(OH\right)_3}=\dfrac{1}{2}.0,1=0,05\left(mol\right)\)
=> \(m_{Al_2O_3}=0,05.102=5,1\left(g\right)\)
\(a,\left\{{}\begin{matrix}m_{H_2SO_4}=\dfrac{300\cdot9,8\%}{100\%}=29,4\left(g\right)\\m_{BaCl_2}=\dfrac{200\cdot26\%}{100\%}=52\left(g\right)\end{matrix}\right.\\ \Rightarrow\left\{{}\begin{matrix}n_{H_2SO_4}=\dfrac{29,4}{98}=0,3\left(mol\right)\\n_{BaCl_2}=\dfrac{52}{208}=0,25\left(mol\right)\end{matrix}\right.\\ PTHH:H_2SO_4+BaCl_2\rightarrow2HCl+BaSO_4\downarrow\)
Vì \(\dfrac{n_{H_2SO_4}}{1}>\dfrac{n_{BaCl_2}}{1}\) nên sau phản ứng \(H_2SO_4\) dư
\(\Rightarrow n_{BaSO_4}=0,25\left(mol\right)\\ \Rightarrow a=m_{BaSO_4}=0,25\cdot233=58,25\left(g\right)\)
\(b,n_{HCl}=2n_{BaCl_2}=0,5\left(mol\right)\\ \Rightarrow m_{CT_{HCl}}=0,5\cdot36,5=18,25\left(g\right)\\ m_{dd_{HCl}}=300+200-58,25=441,75\left(g\right)\\ \Rightarrow C\%_{HCl}=\dfrac{18,25}{441,75}\cdot100\%\approx4,13\%\)
\(a,2NaOH+MgSO_4\rightarrow Mg\left(OH\right)_2+Na_2SO_4\\ n_{NaOH}=0,5.1=0,5\left(mol\right)\\ b,n_{Mg\left(OH\right)_2}=\dfrac{0,5}{2}=0,25\left(mol\right)=n_{Na_2SO_4}\\ m_{kt}=m_{Mg\left(OH\right)_2}=58.0,25=14,5\left(g\right)\\ c,V_{ddX}=V_{ddNaOH}+V_{ddMgSO_4}=0,5+0,5=1\left(l\right)\\ C_{MddNa_2SO_4}=\dfrac{0,25}{1}=0,25\left(M\right)\)
Ta có: \(m_{CuSO_4}=\dfrac{10\%.160}{100\%}=16\left(g\right)\)
=> \(n_{CuSO_4}=\dfrac{16}{160}=0,1\left(mol\right)\)
Ta lại có: \(m_{NaOH}=\dfrac{5\%.240}{100\%}=12\left(g\right)\)
=> \(n_{NaOH}=\dfrac{12}{40}=0,3\left(mol\right)\)
a. PTHH: \(CuSO_4+2NaOH--->Cu\left(OH\right)_2\downarrow+Na_2SO_4\)
Ta thấy: \(\dfrac{0,1}{1}< \dfrac{0,3}{2}\)
Vậy NaOH dư, CuSO4 hết.
Theo PT: \(n_{Cu\left(OH\right)_2}=n_{Na_2SO_4}=n_{CuSO_4}=0,1\left(mol\right)\)
=> \(m_{Cu\left(OH\right)_2}=0,1.98=9,8\left(g\right)\)
b. Ta có: \(m_{dd_{Na_2SO_4}}=240+16-9,8=246,2\left(g\right)\)
Ta có: \(m_{Na_2SO_4}=0,1.142=14,2\left(g\right)\)
=> \(C_{\%_{Na_2SO_4}}=\dfrac{14,2}{246,2}.100\%=5,77\%\)
còn C%NaOH dư đâu bạn