An electron transitions from the n (5.00x10^0) energy level to the n = (2.0000x10^0) energy. Calculate the energy, in Joules, associated with this energy transition. If the transition is exothermic be sure to include the appropriate sign. Use the equation: ΔΕ - 2. 18 x 10-18 J %3D - - This is for administrative purposes only. Rydberg Constant = (2.180x10^-18) Note: Your answer is assumed to be reduced to the highest power possible. Your Answer: х10 Answer

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**Electron Transition Energy Calculation**

An electron transitions from the \( n = (5.00 \times 10^0) \) energy level to the \( n = (2.0000 \times 10^0) \) energy level. Calculate the energy, in Joules, associated with this energy transition. If the transition is exothermic, be sure to include the appropriate sign.

Use the equation:

\[
\Delta E = -2.18 \times 10^{-18} \, \text{J} \left( \frac{1}{n_f^2} - \frac{1}{n_i^2} \right)
\]

---

This is for administrative purposes only.

Rydberg Constant = \( (2.180 \times 10^{-18}) \)

**Note:** Your answer is assumed to be reduced to the highest power possible.

**Your Answer:**

\[
\boxed{} \times 10^{\boxed{}} \, \text{Answer}
\]
Transcribed Image Text:**Electron Transition Energy Calculation** An electron transitions from the \( n = (5.00 \times 10^0) \) energy level to the \( n = (2.0000 \times 10^0) \) energy level. Calculate the energy, in Joules, associated with this energy transition. If the transition is exothermic, be sure to include the appropriate sign. Use the equation: \[ \Delta E = -2.18 \times 10^{-18} \, \text{J} \left( \frac{1}{n_f^2} - \frac{1}{n_i^2} \right) \] --- This is for administrative purposes only. Rydberg Constant = \( (2.180 \times 10^{-18}) \) **Note:** Your answer is assumed to be reduced to the highest power possible. **Your Answer:** \[ \boxed{} \times 10^{\boxed{}} \, \text{Answer} \]
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