Magnetic moment of `X^(n+) (Z=26) " is " sqrt24` B.M. Hence, number of unpairedelectrons and value of n respectively are:

Spin magnetic moment of X^(n+) (Z=26) is sqrt(24) B.M. Hence number of unpaired electrons and value of n respectively are:

The magnetic moment of M^(x+) (atomic number = 25 is sqrt(15) BM .The number of unpaired electron and the value of x respectively are

The value of m and n are respectively :

The value of M and N are respectively.

Magnetic moment of X^(3+) ion of 3d series is 2sqrt6 BM. What is the atomic number of X ?

A compound of a metal ion M^(X+)(z=24) has a spin only magnetic moment of sqrt(15)B.M. . The number of unpaired electrons in the compound are

Magnetic moment of X^(+3) ion of 3d series is sqrt(35)B.M What is the atomic number of X^(+3) ?

Transition metals and many of their compounds show paramagnetic behaviour where there are unpaired electron or electrons. The magnetic moment arises from the spin and orbital motions in ions or molecule. Magnetic moment of n unpaired electrons is given as mu=sqrt(n(n+2)) Bohr magneton Magnetic moment increases as the number of unpaired electrons increases. Q. There are three unpaired electrons in [Co(H_2O)_6]^(2+) and calculated value of magnetic moment on the basis of sqrt(n(n+2)) formula is 3.87 BM. which is lower than the expermental value of 4.40 BM. The reason for this difference is due to

The magnetic moment of ._25Mn in ionic state is sqrt(15)B.M , then Mn is in:

The magnetic moment of ._25Mn in ionic state is sqrt(15)B.M , then Mn is in: