The expected electronic configuration of Cu(29) is as Cu(29)1s2,2s22p5,3s23p6,3d9,4s2
But the actual configuration is as Cu(29)1s2,2s22p6,3s23p6,3d10,4s1
This is attributed to the fact that completely filled electronic configuration (ie, d10 ) has lower energy. Thus, to acquire increased stability one of the 4s-electron goes into the nearby 3d-orbital. So, that 3d-orbital get completely filled in Cu configuration. The extra stability of completely filled electronic configuration is due to their symmetrical arrangement and large exchange energy.