For the quantum number #l = 1#, how many possible values are there for the quantum number #m_l#?

1 Answer

3

Explanation:

The values of #m_l# are dependent on the value for #l#. #l# denotes the type of orbital it is, i.e. s, p, d. Meanwhile, #m_l# denotes the orientation for that orbital.

#l# can take any positive integer greater than or equal to zero, #l>=0#.

#m_l# can take any integer from #-l# to #+l#, #-l<=m_l<=l,m_linZZ#

Since #l=1#, #m_l# can be #-1#, #0#, or #1#. This means there are three possible values for #m_l# given #l=1#.