To understand electromagnetic radiation and be able to perform calculations involving wavelength, frequency, and energy. Several properties are used to define waves. Every wave has a wavelength, which is the distance from peak to peak or trough to trough. Wavelength, typically given the symbol λ (lowercase Greek "lambda"), is usually measured in meters. Every wave also has a frequency, which is the number of wavelengths that pass a certain point during a given period of time. Frequency, given the symbol ν (lowercase Greek "nu"), is usually measured in inverse seconds (s−1). Hertz (Hz), another unit of frequency, is equivalent to inverse seconds. The product of wavelength and frequency is the speed in meters per second (m/s). For light waves, the speed is constant. The speed of light is symbolized by the letter c and is always equal to 2.998×108 m/s in a vacuum; that is, c=λν=2.998×108m/s Another term for "light" is electromagnetic radiation, which encompasses not only visible light but also gamma rays, X-rays, UV rays, infrared rays, microwaves, and radio waves. As you could probably guess, these different kinds of radiation are associated with different energy regimes. Gamma rays have the greatest energy, whereas radio waves have the least energy. The energy (measured in joules) of a photon for a particular kind of light wave is equal to its frequency times a constant called Planck's constant, symbolized h: Ephoton=hν where h=6.626×10−34J⋅s These two equations can be combined to give an equation that relates energy to wavelength: E=hcλ |
Part A A radio station's channel, such as 100.7 FM or 92.3 FM, is actually its frequency in megahertz (MHz), where 1MHz=106Hz and 1Hz=1s−1. Calculate the broadcast wavelength of the radio station 102.9 FM. Express your answer to four significant figures and include the appropriate units. Part B Green light has a frequency of about 6.00×1014s−1. What is the energy of a photon of green light? Express your answer to three significant figures and include the appropriate units. Part C Hospital X-ray generators emit X-rays with wavelength of about 15.0 nanometers (nm), where 1nm=10−9m. What is the energy of a photon of the X-rays? Express your answer to three significant figures and include the appropriate units. |
A)
Given:
f = 1.029*10^8 s-1
use:
lambda = c/f
=(3.0*10^8 m/s)/(1.029*10^8 s-1)
= 2.915 m
Answer: 2.915 m
B)
Given:
f = 6*10^14 s-1
use:
E = h*f
=(6.626*10^-34 J.s)*(6*10^14) s-1
= 3.976*10^-19 J
Answer: 3.98*10^-19 J
C)
Given:
lambda = 1.5*10^-8 m
use:
E = h*c/lambda
=(6.626*10^-34 J.s)*(3.0*10^8 m/s)/(1.5*10^-8 m)
= 1.325*10^-17 J
Answer: 1.33*10^-17 J
To understand electromagnetic radiation and be able to perform calculations involving wavelength, frequency, and energy. Several...
Learning Goal: To understand electromagnetic radiation and be able to perform calculations involving wavelength, frequency, and energy. Several properties are used to define waves. Every wave has a wavelength, which is the distance from peak to peak or trough to trough. Wavelength, typically given the symbol A (lowercase Greek "lambda"), is usually measured in meters. Every wave also has a frequency, which is the number of wavelengths that pass a certain point during a given period of time. Frequency, given...
How do you do these? Please show step by step Properties of Waves - Copy Learning Goal: To understand electromagnetic radiation and be able to perform calculations involving wavelength, frequency, and energy. Several properties are used to define waves. Every wave has a wavelength, which is the distance from peak to peak or trough to trough. Wavelength, typically given the symbol λ(lowercase Greek "lambda"), is usually measured in meters. Every wave also has afrequency, which is the number of wavelengths...
1
Part A List the following types of electromagnetic radiation in order of increasing frequency radio waves, microwaves, visible light, gamma rays o radio waves, visible light, microwaves, gamma rays e visible light, radio waves, microwaves, gamma rays visible light, radio waves, gamma rays, microwaves Submit Request Answer Part B List the following types of electromagnetic radiation in order of decreasing energy per photon. e microwaves, visible light, gamma rays, radio waves e microwaves, gamma rays, visible light, radio waves...
Order the major bands of electromagnetic radiation from longest wavelength to shortest wavelength. microwaves infrared radiation gamma rays x-rays visible light radio waves ultraviolet light
1.The diagram shows the electromagnetic spectrum. Identify the types of electromagnetic radiation (EMR) with the following characteristics. (a) highest frequency radio waves microwaves infrared visible ultraviolet X rays gamma rays (b) highest energy radio waves microwaves infrared visible ultraviolet X rays gamma rays (c) longest wavelength radio waves microwaves infrared visible ultraviolet X rays gamma rays2. Calculate the energy (in joules) of a photon with a wavelength of 2.93x10 nm.
2. Using the figure below, categorize electromagnetic radiation with an energy of 6.7 x 10-18 J/photon. 10 10 109 108 107 10 Wavelength (mm) 102 Tos 1012 10 10 10% Frequency (H) L Xrays Ultra- Infrared Microwave Radio waves Gamma rays Type of radiation Violet A Gamma rays B. X rays C. Ultraviolet D. Infrared E Microwave
Rank the different types of electromagnetic radiation by wavelength. Longest wavelength Only rank items that are forms of electromagnetic radiation. Shortest wavelength high frequency microwave radiation a high-pitch sound wave radio waves ultraviolet radiation low frequency microwave radiation an orange photon
Rank the types of electromagnetic radiation by their wavelength from longest to shortest. radio waves~microwaves~uv light~red light~x rays~ violet light~gamma rays~infra red
What is the highest energy form of radiation in the electromagnetic spectrum? Why is radiation therapy used in treating cancer, when it can also cause cancer? What is the energy in joules and eV of a photon in a radio wave from an AM station that has a 1730-kHz broadcast frequency? What is the wavelength of a 1.40-eV photon? What is the “particle-wave duality” of light?
Electromagnetic radiation behaves both as particles (called photons) and as waves Wavelength (lambda)j and frequency (nu) are related according to the equation c = lambda Times nu where c is the speed of light (3.00 Times 10^8 m/s). The energy (E in joules) contained in one quantum of electromagnetic radiation is described by the equation E = h Times nu where h it Planck's constant (6.626 Times 10^-34 J s) Note that frequency has units of inverse seconds (s^-1), which...