Multiple Choice
Calculate the wavelength, in nanometers, of the light emitted by a hydrogen atom when its electron falls from the n = 7 to the n = 4 principal energy level. Recall that the energy levels of the H atom are given by En = -2.18 * 10-18 J(1/n2)
A) 4.45 * 10-20 nm
B) 2.16 * 10-6 nm
C) 9.18 * 10-20 nm
D) 1.38 * 1014 nm
E) 2.16 * 103 nm
Correct Answer:

Verified
Correct Answer:
Verified
Q7: For all atoms of the same element,
Q8: When photons with a wavelength of 310.nm
Q10: A photon is roughly 1800 times more
Q15: A possible set of quantum numbers for
Q16: Calculate the energy, in joules, required to
Q17: Which ground-state atom has an electron configuration
Q18: The orbital diagram for a ground-state oxygen
Q48: If one electron is added to the
Q93: Transition metal elements have atoms or ions
Q122: A photovoltaic cell converts light into electrical