(a)
Interpretation:
The wavelength of the photon needed to excite an electron from the given energy levels of a hypothetical atom
Concept Introduction:
The emission of radiation given by an energized hydrogen atom to the electron falling from a higher-energy orbit to a lower orbit give a quantum of energy in the form of light. Based on electrostatic interaction and law of motion, Bohr derived the following equation.
Where,
The electrons are excited thermally when the light is used by an object. As a result, an emission spectrum comes. Line spectra consist of light only at specific, discrete wavelengths. In emission, the electron returns to a lower energy state from
This transition results in the photon’s emission with frequency
When,
(a)

Answer to Problem 7.29QP
The wavelength of the photon needed to excite an electron from the given energy levels of a hypothetical atom
Explanation of Solution
To find: Calculate the wavelength of the photon needed to excite an electron from the given energy levels of a hypothetical atom
The given energy levels of a hypothetical atom are given as follows:
The energy difference (
Therefore, the energy difference (
Planck’s constant,
Therefore, the wavelength of the photon needed to excite an electron from the given energy levels of a hypothetical atom
(b)
Interpretation:
The wavelength of the photon needed to excite an electron from the given energy levels of a hypothetical atom
Concept Introduction:
The emission of radiation given by an energized hydrogen atom to the electron falling from a higher-energy orbit to a lower orbit give a quantum of energy in the form of light. Based on electrostatic interaction and law of motion, Bohr derived the following equation.
Where,
The electrons are excited thermally when the light is used by an object. As a result, an emission spectrum comes. Line spectra consist of light only at specific, discrete wavelengths. In emission, the electron returns to a lower energy state from
This transition results in the photon’s emission with frequency
When,
(b)

Answer to Problem 7.29QP
The energy of a photon to excite an electron from
Explanation of Solution
To find: Calculate the energy (in joules) a photon must have in order to excite an electron from
The energy difference (
Substitute the given values in the formula:
Therefore, the energy of a photon to excite an electron from
(c)
Interpretation:
The wavelength of the photon needed to excite an electron from the given energy levels of a hypothetical atom
Concept Introduction:
The emission of radiation given by an energized hydrogen atom to the electron falling from a higher-energy orbit to a lower orbit give a quantum of energy in the form of light. Based on electrostatic interaction and law of motion, Bohr derived the following equation.
Where,
The electrons are excited thermally when the light is used by an object. As a result, an emission spectrum comes. Line spectra consist of light only at specific, discrete wavelengths. In emission, the electron returns to a lower energy state from
This transition results in the photon’s emission with frequency
When,
(c)

Answer to Problem 7.29QP
The wavelength of the photon emitted when an electron drops from the
Explanation of Solution
To find: Calculate the wavelength of the photon emitted when an electron drops from the
The energy difference (
Therefore, the energy difference (
Planck’s constant,
Therefore, the wavelength of the photon emitted when an electron drops from the
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Chapter 7 Solutions
EBK GENERAL CHEMISTRY: THE ESSENTIAL CO
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- Curved arrows are used to illustrate the flow of electrons. Using the provided starting and product structures, draw the curved electron-pushing arrows for the following reaction or mechanistic step(s). Be sure to account for all bond-breaking and bond-making steps. Drawing Arrows THE Problem 33 of 35 N. C:0 Na + Submit Drag To Pan +arrow_forwardDraw the product of the E2 reaction shown below. Include the correct stereochemistry. Ignore and inorganic byproducts.arrow_forwardDraw the major producrs of this SN1 reaction. Ignore any inorganic byproducts. Use a dash or wedge bond to indicate the sereochemistry of substituents on asymmetric centers where appllicable.arrow_forward
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