Home
Class 11
CHEMISTRY
Lithium shows diagonal relationship with...

Lithium shows diagonal relationship with Megnesium. Give reason.

Text Solution

Verified by Experts

Both lithium and magnesium have small size and high charge density. The electronegativities of Li is 0.1 and Mg is 1.2. They are low and almost same. Their ionic radii are similar. Hence they show similarities which is known as diagonal relatioship between first element of a group with the second element in the next higher group.
Doubtnut Promotions Banner Mobile Dark
|

Topper's Solved these Questions

  • S-Block Elements

    SUBHASH PUBLICATION|Exercise Three marks questions and answers|8 Videos
  • S-Block Elements

    SUBHASH PUBLICATION|Exercise Three marks questions and answers|8 Videos
  • REDOX REACTIONS

    SUBHASH PUBLICATION|Exercise Three Marks Questions|29 Videos
  • SOME BASIC CONCEPTS OF CHEMISTRY

    SUBHASH PUBLICATION|Exercise NUMERICAL PROBLEMS AND ANSWERS:|49 Videos

Similar Questions

Explore conceptually related problems

What is called diagonal relationship ?

Give any two diagonal relationship between Lithium and Magnesium.

Knowledge Check

  • Lithium shows diagonals relationship with

    A
    Magnesium
    B
    Beryllium
    C
    Aluminium
    D
    Boron.
  • Diagonal relationship is for:

    A
    Li - Na
    B
    Be - Mg
    C
    Si - C
    D
    B - Si
  • A diagonal relationship exists between lithium and :

    A
    sodium
    B
    beryllium
    C
    magnesium
    D
    boron
  • Similar Questions

    Explore conceptually related problems

    Explain the diagonal relationship between Lithium and Magnesium.

    Give one suitable reason for diagonal relatioship of lithium with magnesium.

    Explain the diagonal relationship between LIthium and Magnesium

    Discuss the diagonal relationship of Be and AI with regard to (i) action of alkali and (ii) the strucutre of their chloride.

    Both lithium and magnesium display several similar properties due to the diagonal relationship, however, the one which is incorrect, is