मराठी
महाराष्ट्र राज्य शिक्षण मंडळएचएससी विज्ञान (सामान्य) इयत्ता १२ वी

Aluminium crystallizes in a cubic close-packed structure with a unit cell edge length of 353.6 pm. What is the radius of Al atom? How many unit cells are there in 1.00 cm3 of Al? - Chemistry

Advertisements
Advertisements

प्रश्न

Aluminium crystallizes in a cubic close-packed structure with a unit cell edge length of 353.6 pm. What is the radius of Al atom? How many unit cells are there in 1.00 cm3 of Al? 

बेरीज
Advertisements

उत्तर

Given: Type of unit cell is ccp.
Edge length (a) = 353.6 pm = 3.536 × 10–8 cm Volume (V) of Al = 1.00 cm3

To find:

1. Radius of Al atom (r)

2. Number of unit cells in 1.00 cm3 of Al

Formulae:

1. For ccp (fcc) unit cell, r = 0.3535 a

2. Number of unit cells in volume (V) of metal = `"V"/"a"^3`

Calculation:

1. Using formula (i),

r = 0.3535 a

∴ r = 0.3535 × 353.6 = 125 pm

2. Using formula (ii),

Number of unit cells in volume (V) of metal = `"V"/"a"^3`

∴  Number of unit cells in 1.00 cm3 of Al = `(1.00)/(3.536 xx 10^-8)^3 = 2.26 xx 10^22`

1. Radius of Al atom (r) is 125 pm.

2. Number of unit cells in 1.00 cm3 of Al is 2.26 × 1022.

shaalaa.com
Packing Efficiency
  या प्रश्नात किंवा उत्तरात काही त्रुटी आहे का?
पाठ 1: Solid State - Exercises [पृष्ठ २७]

APPEARS IN

बालभारती Chemistry [English] Standard 12 Maharashtra State Board
पाठ 1 Solid State
Exercises | Q 5 | पृष्ठ २७

संबंधित प्रश्‍न

Answer the following in one or two sentences.

Which of the three types of packing used by metals makes the most efficient use of space and which makes the least efficient use?


Answer the following in one or two sentences.

Mention two properties that are common to both hcp and ccp lattices.


Answer the following in brief.

Calculate the packing efficiency of metal crystal that has simple cubic structure.


In ionic crystalline solid atoms of element Y form hcp lattice. The atoms of element X occupy one-third of tetrahedral voids. What is the formula of the compound?


An element has a bcc structure with a unit cell edge length of 288 pm. How many unit cells and a number of atoms are present in 200 g of the element? (1.16 × 1024, 2.32 × 1024)


Calculate the packing efficiency for bcc lattice.


In case of hcp structure, how are spheres in first, second and third layers arranged?


A substance crystallizes in fcc structure. The unit cell edge length is 367.8 pm. Calculate the molar mass of the substance if its density is 21.5 g/cm3.


Identify the INCORRECT match.


A compound of X and Y crystallizes in ccp structure in which the X atoms occupy the lattice points at the corners of cube and Y atoms occupy the centres of each of the cube faces. The formula of this compound is ____________.


The number of particles in 1 g of a metallic crystal is equal to ____________.


The coordination number of each sphere in simple cubic lattice is ____________.


The percentage of vacant space of bcc unit cell is ____________.


Which among the following crystal structures the edge length of unit cell is equal to twice the radius of one atom?


What is the edge length of fcc type of unit cell having density and atomic mass 6.22 g cm−3 and 60 g respectively?


Atoms of elements A and B crystallize in hep lattice to form a molecule. Element A occupies 2/3 of tetrahedral voids, the formula of molecule is ______.


Copper crystallizes as face centered cubic lattice, with edge length of unit cell 361 pm. Calculate the radius of copper atom.


What is the percentage of void space in bcc type of in unit cell?


An element crystallizes in a bee lattice with cell edge of 500 pm. The density of the element is 7.5 g cm-3. How many atoms are present in 300 g of metal?


Gold crystallizes in face centred cubic structure. If atomic mass of gold is 197 g mol-1, the mass of unit cell of gold is ______.


The relation between the radius of the sphere and the edge length in the body-centred cubic lattice is given by the formula ______.


A compound has a hep structure. Calculate the number of voids in 0.4 mol of it.


Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×