Final answer:
The electron configuration that represents an atom in an excited state is option 1) 2-8-1. This is because it shows an electron promoted to a higher energy level beyond the typical ground state configuration.
Step-by-step explanation:
The question asks about an electron configuration that represents an atom in an excited state. In the ground state, electrons fill the lowest energy orbitals first, following the Aufbau principle, Pauli exclusion principle, and Hund's rule. An excited state occurs when an electron has absorbed energy and moved to a higher energy orbital. Comparing the provided electron configurations to ground state configurations:
- Option 1) 2-8-1 is an excited state configuration as one electron has moved to a higher energy level from a filled 2p sublevel.
- Option 2) 2-8-6 likely represents the ground state configuration for oxygen.
- Option 3) 2-8-17-6 is not a possible configuration as the third shell can hold a maximum of 18 electrons when including the d sublevel, but cannot have 17 in one sublevel.
- Option 4) 2-8-18-5 represents a possible ground state configuration for an element further down the periodic table.
Therefore, the configuration that represents an atom in an excited state is option 1) 2-8-1.