energy of red line: wavelength of light blue line: frequency of light blue line: energy of light blue line: wavelength of deep blue line: frequency of deep blue line: energy of deep blue line: wavelength of violet line: frequency of violet line: J m Hz J m Hz J m Hz

Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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energy of red line:
wavelength of light blue line:
frequency of light blue line:
energy of light blue line:
wavelength of deep blue line:
frequency of deep blue line:
energy of deep blue line:
wavelength of violet line:
frequency of violet line:
J
m
Hz
J
m
Hz
J
m
Hz
Transcribed Image Text:energy of red line: wavelength of light blue line: frequency of light blue line: energy of light blue line: wavelength of deep blue line: frequency of deep blue line: energy of deep blue line: wavelength of violet line: frequency of violet line: J m Hz J m Hz J m Hz
When atoms absorb energy, they often release that energy as visible light. In this lab, you will explore two different
approaches to measuring this light: a simple test called a flame test and a more detailed measurement of the specific
wavelengths of light that different elements produce.
For hydrogen, you observe four spectral lines, red, light blue, deep blue, and violet. Using the following equations, calculate the
frequency and energy for each wave.
Line
Red
Light Blue
Deep Blue
Violet
wavelength of red line:
frequency of red line:
v = c/2
v = frequency (s-¹)
c = speed of light = 3.0 × 108 m/s
λ = wavelength (m)
nm
Wavelength
656 nm
486 nm
434 nm
410 nm
m
E = hv
E = energy of a photon of light (J)
h = Planck's constant = 6.63 × 10-34 J.s
v = frequency (s-¹)
Frequency (Hz)
Energy (J)
m
Hz
Transcribed Image Text:When atoms absorb energy, they often release that energy as visible light. In this lab, you will explore two different approaches to measuring this light: a simple test called a flame test and a more detailed measurement of the specific wavelengths of light that different elements produce. For hydrogen, you observe four spectral lines, red, light blue, deep blue, and violet. Using the following equations, calculate the frequency and energy for each wave. Line Red Light Blue Deep Blue Violet wavelength of red line: frequency of red line: v = c/2 v = frequency (s-¹) c = speed of light = 3.0 × 108 m/s λ = wavelength (m) nm Wavelength 656 nm 486 nm 434 nm 410 nm m E = hv E = energy of a photon of light (J) h = Planck's constant = 6.63 × 10-34 J.s v = frequency (s-¹) Frequency (Hz) Energy (J) m Hz
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