NEET Exam  >  NEET Tests  >  Chemistry Class 12  >  Test: Packing Efficiency (Old NCERT) - NEET MCQ

Test: Packing Efficiency (Old NCERT) - NEET MCQ


Test Description

10 Questions MCQ Test Chemistry Class 12 - Test: Packing Efficiency (Old NCERT)

Test: Packing Efficiency (Old NCERT) for NEET 2024 is part of Chemistry Class 12 preparation. The Test: Packing Efficiency (Old NCERT) questions and answers have been prepared according to the NEET exam syllabus.The Test: Packing Efficiency (Old NCERT) MCQs are made for NEET 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for Test: Packing Efficiency (Old NCERT) below.
Solutions of Test: Packing Efficiency (Old NCERT) questions in English are available as part of our Chemistry Class 12 for NEET & Test: Packing Efficiency (Old NCERT) solutions in Hindi for Chemistry Class 12 course. Download more important topics, notes, lectures and mock test series for NEET Exam by signing up for free. Attempt Test: Packing Efficiency (Old NCERT) | 10 questions in 10 minutes | Mock test for NEET preparation | Free important questions MCQ to study Chemistry Class 12 for NEET Exam | Download free PDF with solutions
Test: Packing Efficiency (Old NCERT) - Question 1

The edge length of a fcc  is 508 pm. If the radius of cation is 110 pm, the radius of anion is

Detailed Solution for Test: Packing Efficiency (Old NCERT) - Question 1

For fcc,
2(r+ + r-) = a
2(110 + r-) = 508
r- = 508/2 - 110 = 144 pm

Test: Packing Efficiency (Old NCERT) - Question 2

A metal X crystallises in a face-centred cubic arrangement with the edge length 862 pm. What is the shortest separation of any two nuclei of the atom ?

Detailed Solution for Test: Packing Efficiency (Old NCERT) - Question 2

For fcc arrangement , distance of nearest neighbour (d) is

= 609.6 pm

1 Crore+ students have signed up on EduRev. Have you? Download the App
Test: Packing Efficiency (Old NCERT) - Question 3

The edge length of sodium chloride unit cell is 564 pm. If the size of Cl- ion is 181 pm. The size of Na+ ion will be

Detailed Solution for Test: Packing Efficiency (Old NCERT) - Question 3

2(r+ + r-) = a
2(2Na+ + rCl-) = 564
2Na = 564/2 - 181 = 101 pm

Test: Packing Efficiency (Old NCERT) - Question 4

If the distance between Na+ and Cl- ions in NaCl crystals is 265 pm, then edge length of the unit cell will be?

Detailed Solution for Test: Packing Efficiency (Old NCERT) - Question 4

In NaCl crystal , Edge length = 2 x distance between Na+ and Cl
=2 x 265 = 530 pm

Test: Packing Efficiency (Old NCERT) - Question 5

The radius of Na+ is 95pm and that of Cl- is 181 pm. The edge length of unit cell in NaCl would be (pm).

Detailed Solution for Test: Packing Efficiency (Old NCERT) - Question 5

a = (r+ + r-) = 2(95 + 181) = 552 pm

Test: Packing Efficiency (Old NCERT) - Question 6

Copper crystallises in fcc with a unit cell length of 361 pm. What is the radius of copper atom?157 pm

Detailed Solution for Test: Packing Efficiency (Old NCERT) - Question 6

For fcc,
r = √2 / 4 x a = √2 / 4 x 361

= 127 pm

Test: Packing Efficiency (Old NCERT) - Question 7

Total volume of atoms present in a fcc unit cell of a metal with radius r is

Detailed Solution for Test: Packing Efficiency (Old NCERT) - Question 7

a = 2√2 r
Volume of the cell = a3 = (2√2 r)3 =  16√2r3
No. of shperes in fcc = 8 x 1/8 + 6 x 1/2 = 4
Volume of the four spheres = 4 x 4/3πr3
= 16πr3

Test: Packing Efficiency (Old NCERT) - Question 8

The relation between atomic radius and edge length 'a' of a body centred cubic unit cell:

Detailed Solution for Test: Packing Efficiency (Old NCERT) - Question 8

Distance between nearest neighbours, d = AD/2
In right angled △ABC,AC= AB2 + BC2 
AC2 = a2 + a2  or AC = √2a
Now in right angled △ADC,
AD2 = AC2 + DC2
∴ d = √3a / 2
Radius , r = d/2 = √3/4 a

Test: Packing Efficiency (Old NCERT) - Question 9

Edge length of unit cell of Chromium metal is 287 pm with the arrangement. The atomic radius is the order of:

Detailed Solution for Test: Packing Efficiency (Old NCERT) - Question 9

In bcc lattice, r = √3/4
r = 
= 124.27 pm

Test: Packing Efficiency (Old NCERT) - Question 10

The fraction of total volume occupied by the atoms present in a simple cube is

Detailed Solution for Test: Packing Efficiency (Old NCERT) - Question 10

For simple cube,
Radius(r) = a / 2 [a = edge length]
Volume of the atom = 
Packing fraction = 
Volume of the sphere (atoms) in an unit cell.
For simple cubic, Z = 1 atom
Packing fraction = 

101 videos|287 docs|123 tests
Information about Test: Packing Efficiency (Old NCERT) Page
In this test you can find the Exam questions for Test: Packing Efficiency (Old NCERT) solved & explained in the simplest way possible. Besides giving Questions and answers for Test: Packing Efficiency (Old NCERT), EduRev gives you an ample number of Online tests for practice

Top Courses for NEET

101 videos|287 docs|123 tests
Download as PDF

Top Courses for NEET