Respuesta :
Answer: 0.35 m [tex]NaCl[/tex] > 0.20 m [tex]MgCl_2[/tex] >0.10 m [tex]Na3PO_4[/tex] > 0.15 m [tex]CH_3COOH[/tex] > 0.15 m [tex]C_6H_{12}O_6[/tex]
Explanation:
Depression in freezing point:
[tex]T_f^0-T_f=i\times k_b\times m[/tex]
where,
[tex]T_f[/tex]= freezing point of solution
[tex]T^o_f[/tex] = freezing point of solvent
[tex]k_f[/tex] = freezing point constant
m = molality
1. For 0.10 m [tex]Na3PO_4[/tex]
[tex]Na_3PO_4\rightarrow 3Na^++PO_4^{3-}[/tex]
, i= 4 as it is a electrolyte and dissociate to give 4 ions. and concentration of ions will be [tex]4\times 0.10=0.40[/tex]
2. For 0.35 m [tex]NaCl[/tex]
[tex]NaCl\rightarrow Na^++Cl^-[/tex]
, i= 2 as it is a electrolyte and dissociate to give 2 ions. and concentration of ions will be [tex]2\times 0.35=0.70[/tex]
3. For 0.20 m [tex]MgCl_2[/tex]
[tex]MgCl_2\rightarrow Mg^{2+}+2Cl^-[/tex]
, i= 3 as it is a electrolyte and dissociate to give 3 ions. and concentration of ions will be [tex]3\times 0.20=0.60[/tex]
4. For 0.15 m [tex]C_6H_{12}O_6[/tex]
, i= 1 as it is a non electrolyte and does not dissociate to give ions.
5. For 0.15 m [tex]CH_3COOH[/tex]
[tex]CH_3COOH\rightarrow CH_3COO^-+H^+[/tex]
, i= 2 as it is a electrolyte and dissociate to give 2 ions and thus have [tex]2\times 0.15=0.30[/tex]
As concentration is highest for 0.35 m [tex]NaCl[/tex] , freezing point depression will be highest and thus has lowest freezing point. As concentration is lowest for 0.15 m [tex]C_6H_{12}O_6[/tex] , freezing point depression will be lowest and thus has highest freezing point
