The ratio of `(Lambda_(m)/Lambda_(e))` for `Ca_(3) (PO_(4))_(2)` will be equal to :

Ca_(3)(PO_(4))_(2) is :

The ratio of (^^m)/(^^eq) for Ca_(3) (po_4)_2 will be equal to :

Lambda_((m)(NH_(4)OH))^(@) is equal to

Lambda_(m)^(@)H_(2)O is equal to

In the reaction CA(OH)_(2)+H_(3)PO_(4) rarr Ca_(3)(PO_(4))_(2)+H_(2)O , the equivalent mass of H_(2) O is: (M molecular mass)

Ca_(3)(PO_(4))_(2) +H_(2)SO_(4) to

A particle moving with kinetic energy E_(1) has de Broglie wavelength lambda_(1) . Another particle of same mass having kinetic energy E_(2) has de Broglie wavelength lambda_(2). lambda_(2)= 3 lambda_(2) . Then E_(2) - E_(1) is equal to

What is the valency of PO_(4) in the compound Ca_(3)(PO_(4))_(2)