Question 10 4 pts Which of the following explanations best e
Solution
Let\'s first write the elctronic configuration of Beryllium and Boron
Beryllium: 1s2 2s2
Boron :1s2 2s2 2p1
Now, looking at general periodic trends it says that boron should have a higher ionization energy than beryllium
BUT, since Beryllium has two electrons in its outermost orbital which is 2s orbital. The electrons in the 2s orbital are already paired and hence it is quite a stable configuration for the beryllium atom. Hence the first ionization enthalpy of beryllium is higher than that for boron. Also, we can say that Boron\'s valence electron (2p1) is shielded by the 2s electrons, less energy is required to remove the the 2p electron(s) from a boron atom than is requried to remove the 2s electron from a beryllium atom.
Hence, option (5) would be the best explaination for the quesition.