CuSO_4 crystallise in rock salt structure.Its cell parametercan be determined by various experimental methods like electrical conductivity measurement, colligative properties measurement, pHmeasurement etc. A cubic crystal of CuSO_4 of edge length 17.1 mm, is dissolved in water to make 500 ml solution of pH 5.root3(1.5)=1.14) Given : Cu(H_2O)_6^(2+)+H_2O hArr [Cu(H_2O)_5(OH)]^(+)+H_3O^(+) , K=10^(-5) In the given solution is made 1 M with respect to [Cu^(2+)] becomes 10^(-15) M therefore K_f for the formation of Cu(NH_3)_4^(2+) is

CuSO_4 crystallise in rock salt structure.Its cell parametercan be det

1.	CuSO_4 crystallise in rock salt structure.Its cell parametercan be determined by various experimental methods like electrical conductivity measurement, colligative properties measurement, pHmeasurement etc. A cubic crystal of CuSO_4 of edge length 17.1 mm, is dissolved in water to make 500 ml solution of pH 5.root3(1.5)=1.14) Given : Cu(H_2O)_6^(2+)+H_2O hArr [Cu(H_2O)_5(OH)]^(+)+H_3O^(+) , K=10^(-5) In the given solution is made 1 M with respect to [Cu^(2+)] becomes 10^(-15) M therefore K_f for the formation of Cu(NH_3)_4^(2+) is
Answer» `10^10` `10^8` `2xx10^8` `2xx10^10` Solution :`{:(Cu(H_2O)_6^(2+)+H_2OhArr,[CA(H_2O)_5(OH)]^(+),+H_3O^(+)),(C, , ),(C-x,x,x):}` `10^(-5)=x^2/(C-x)=((10^(-5))^2)/(C-10^(-5))` `C=2xx10^(-5)` mol/lt `:.` MOLES of `CuSO_4` DISSOLVED =`2xx10^(-5)xx0.5 =10^(-5)` Number of units cells `=(10^(-5)xxN_A)/4=6/4xx10^(18)=1.5xx10^(18)` number of unit cells along one edge of the cube =`root3(1.5xx10^(18))=1.14xx10^8` If edge LENGTH of F C C unit cell is a Now`{:(Cu^(2+)+,4NH_3hArr,Cu(NH_3)_4^(2+)),(2xx10^(-5), , ),(10^(-15),1,2xx10^(-5)):}` `K_f=([Cu(NH_3)_4^(2+)])/([Cu^(2+)][NH_3]^(4))=(2xx10^(-5))/(10^(-15)xx1)=2xx10^10`