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transition elements are paramagnetic in nature due to the presence of unpaired electrons.
Transition metals have magnetic properties because they have unpaired electrons in their d-orbitals. These unpaired electrons can align their spins in response to an external magnetic field, which leads to the generation of a magnetic field. This property is responsible for the magnetic behavior of transition metals.
Cr and Fe have four unpaired electrons in their 2 plus ions.
There are no unpaired electrons in strontium.
They can be both. In sodium there is a single unpaired valence electron. In magnesium there are two valence electrons and they are paired.
The physical properties of transition metals are determined by their electron configurations. Most transition metals are hard solids with relatively high melting and boiling points. Differences in properties among transition metals are based on the ability of unpaired d electrons to move into the valence level. The more unpaired electrons in the d sublevel, the greater the hardness and the higher the melting and boiling points.
transition elements are paramagnetic in nature due to the presence of unpaired electrons.
due to having metallic and covalent bonds between unpaired electrons in transition metals
Transition metals have magnetic properties because they have unpaired electrons in their d-orbitals. These unpaired electrons can align their spins in response to an external magnetic field, which leads to the generation of a magnetic field. This property is responsible for the magnetic behavior of transition metals.
Cr and Fe have four unpaired electrons in their 2 plus ions.
There are 3 unpaired electrons.
zero - there are no unpaired electrons
three unpaired electrons
There are no unpaired electrons in strontium.
mg
6 unpaired electrons
5 unpaired electrons There are 5 unpaired electrons in the Fe3+ ion. The reason for this is that Iron has the electron configuration Ar3d5.