Chemistry, asked by jarvisyt2, 7 months ago

If the energy difference between two electronic states 214-68 kj mol–1, calculate the frequency of lighte emitted when an alectron drops from the higher to the lower state. planck’s constant, h =39•79×10–14 kj sec mol–1.

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Answered by jjaajjajaja36

Answer:

If the energy difference between two electronic sates is 214.68Kj/mol, calculate the frequency of light emitted when an electron drops from the higher to lower states.

Explanation:

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If the energy difference between two electronic states 214-68 kj mol–1, calculate the frequency of lighte emitted when an alectron drops from the higher to the lower state. planck’s constant, h =39•79×10–14 kj sec mol–1. ​

Answers

If the energy difference between two electronic states 214-68 kj mol–1, calculate the frequency of lighte emitted when an alectron drops from the higher to the lower state. planck’s constant, h =39•79×10–14 kj sec mol–1.