
Interpretation:
For the given principal quantum number, the probable subshells and orbitals have to be identified.
Concept introduction:
Principal Quantum Number(n): In an atom, the electron energy mainly depends on principal quantum number. The energy of an electron becomes lower when the value of n is smaller. The orbital size also depends on n. The size of orbital increases with increase in value of principal quantum number (n)
Magnetic Quantum Number(ml): It helps to distinguish orbitals having various orientation in space. Any integer between -l and +l is the probable values of magnetic quantum number. For s subshell the l = 0, then ml is zero. For p subshell the l = 1, then ml = −1, 0 , +1.
Spin Quantum Number(ms): It refers to direction of spin of an electron in an orbital. The possible values are +12 or -12.

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Chapter 7 Solutions
CHEMISTRY (LOOSELEAF) >CUSTOM<
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