Edge length of unit cell of KCI is 629 pm and density is 1.989 g per `cm^3`. Calculate Avogadro's number based on this X-ray diffraction data.

The edge length of NaCl unit cell is 564 pm. What is the density of NaCl in g/ cm^(3) ?

By X-ray diffraction it is found that nickel ("at mass"=59g "mol"^(-1)) , crystallizes in ccp. The edge length of the unit cell is 3.5 Å . If density of Ni crystal is 9.0g//cm^(3) , then value of Avogadro's number from the data is:

The edge length of unit cell of a body-centred cubic (bcc) crystal is 352 pm. Calculate the radius of the atom.

A metal has an fcc latticed.The edge length of the unit cell is 404 pm .The density of the metal is 2.72 g//cm^(-3) .The molar mass of the metal is (N_(A) Avogadro's constant = 6.2 xx 10^(23) mol^(-1))

The edge length of the unit cell of NaCl crystal lattice is 5.623Å , density is 2.16g cm^(-3) and the molar mass of NaCl is 58.5 g " mol "^(-1) . The number of moles per unit cell is

The element chromium crystallises in a body centred cubic lattice whose density is 7.20g//cm^(3) . The length of the edge of the unit cell is 288.4 pm. Calculate Avogadro's number (Atomic mas of Cr = 52).

The face centred cell of nickel has an edge length 352.39 pm. The density of nickel is 8.9 g/cc. Avogadro number is

Gold has cubic crystals whose unic cell has edge length of 407.9 pm. Density of gold is 19.3 g cm^(-3) . Calculate the number of atoms per unit cell. Also predict the type of crystal lattice of gold (Atomic mass of gold = 197 amu)

Iron has body centred cubic cell with a cell edge of 286.5 pm. The density of iron is 7.87 g cm^(-3) . Use this information to calculate Avogadro's number. (Atomic mass of Fe = 56 mol^(-3) )