KCI cyrstallizes in the saem type of lattice as does NaCl. Given that `(r_(Na^(o+))/(r_(Cl_(-)))=0.5` and `(r_(Na^(o+)))/(r_(K^(o+)))=0.7` Calculate the ratio of side of the unit cell for KCl to that for NaCl.A. 0.6B. 1.1C. 2.2D. 3.3

KCI cyrstallizes in the saem type of lattice as does NaCl. Given that

1.	KCI cyrstallizes in the saem type of lattice as does NaCl. Given that `(r_(Na^(o+))/(r_(Cl_(-)))=0.5` and `(r_(Na^(o+)))/(r_(K^(o+)))=0.7` Calculate the ratio of side of the unit cell for KCl to that for NaCl.A. 0.6B. 1.1C. 2.2D. 3.3
Answer» NaCl crystallizes in the face-centered cubic unit cell, such that `r_(Na^(o+))+r_(Cl^(-))=a//2` where a is the edge length of unit cell. Now since `r_(Na^(o+))//r_(Cl^(-))=0.5` and `r_(Na^(o+))//r_(K^(o+))=0.7` we will have `(r_(Na^(o+))+r_(Cl^(-)))/(r_(Cl^(-)))=(r_(K^(o+)))/(r_(Na^(o+))//0.5)=(0.5)/(r_(Na^(o+))//r_(K^(o+)))(0.5)/(0.7)` [Add 1 to both sides] or `(r_(K^(o+)))/(r_(Na^(o+))+r_(Cl^(-)))=(1.2)/(0.7)xx(1)/(1.5)` or `(a_(KCl)//2)/(a_(NaCl)//2)=(1.2)/(0.7xx1.5)` or `(a_(KCl))/(a_(NaCl))=(1.2)/(1.05)=1.143`.

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KCI cyrstallizes in the saem type of lattice as does NaCl. Given that `(r_(Na^(o+))/(r_(Cl_(-)))=0.5` and `(r_(Na^(o+)))/(r_(K^(o+)))=0.7` Calculate the ratio of side of the unit cell for KCl to that for NaCl.A. 0.6B. 1.1C. 2.2D. 3.3

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