Solutions for FUND.OF PHYSICS(LL)-PRINT COMP-W/ACCESS
Problem 1Q:
Does the spacing between fringes in a two-slit interference pattern increase, decrease, or stay the...Problem 2Q:
a If you move from one bright fringe in a two-slit interference pattern to the next one farther out,...Problem 3Q:
Figure 35-22 shows two light rays that are initially exactly in phase and that reflect from several...Problem 4Q:
In Fig. 35-23, three pulses of lighta, b, and cof the same wavelength are sent through layers of...Problem 5Q:
Is there an interference maximum, a minimum, an intermediate state closer to a maximum, or an...Problem 6Q:
Figure 35-24a gives intensity I verus position x on the viewing screen for the central portion of a...Problem 7Q:
Figure 35-25 shows two sources S1 and S2 that emit radio waves of wavelength in all directions. The...Problem 8Q:
Figure 35-26 shows two rays of light, of wavelength 600 nm, that reflect from glass surfaces...Problem 9Q:
Light travels along the length of a 1500-nm-long nanostructure. When a peak of the wave is at one...Problem 10Q:
Figure 35-27a shows the cross section of a vertical thin film whose width increases downward because...Problem 11Q:
Figure 35-28 shows four situations in which light reflects perpendicularly from a thin film of...Problem 12Q:
Figure 35-29 shows the transmission of light a thin film in air by a perpendicular beam tilted in...Problem 13Q:
Figure 15-30 shows three situations in which two rays of sunlight penetrate slightly into and then...Problem 1P:
In Fig. 35-31, a light wave along ray r1 reflects once from a mirror and a light wave along ray r2...Problem 2P:
In Fig. 35-31, a light wave along ray r1 reflects once from a mirror and a light wave along ray r2...Problem 3P:
SSM In Fig 35-4, assume that two waves of light in air, of wavelength 400nm, are initially in phase....Problem 4P:
In Fig. 35-32a, a beam of light in material 1 is incident on a boundary at an angle of 30. The...Problem 5P:
How much faster, in meters per second, does light travel in sapphire than in diamond? See Table...Problem 6P:
The wavelength of yellow sodium light in air is 589 nm. a What is its frequency? b What is its...Problem 7P:
The speed of yellow light from a sodium lamp in a certain liquid is measured to be 1.92 108 m/s....Problem 8P:
In Fig 35-33, two light pulses are sent through layers of plastic with thickness of either L or 2L...Problem 9P:
In Fig. 35-4, assume that the two light waves, of wavelength 620 nm in air, are initially out of...Problem 10P:
Figure 35-27a shows the cross section of a vertical thin film whose width increases downward because...Problem 11P:
Suppose that the two waves in Fig. 35-4 have wavelength = 500 nm in air. What multiple of gives...Problem 12P:
In Fig. 35-35, two light rays go through different paths by reflecting from the various flat...Problem 13P:
GO ILW Two waves of light in air, of wavelength = 600.0 nm, are initially in phase. They then both...Problem 14P:
In a double-slit arrangement the slits are separated by a distance equal to 100 times the wavelength...Problem 15P:
SSM A double-slit arrangement produces interference fringes for sodium light = 589 nm that have an...Problem 16P:
A double-slit arrangement produces interference fringes for sodium light = 589 nm that are 0.20...Problem 18P:
In the two-slit experiment of Fig. 35-10, let angle be 20.0, the slit separation be 4.24 m, and the...Problem 19P:
SSM ILW Suppose that Youngs experiment is performed with blue-green light of wavelength 500 nm. The...Problem 20P:
Monochromatic green light, of wavelength 550 nm, illuminates two parallel narrow slits 7.70 m apart....Problem 21P:
In a double-slit experiment, the distance between slits is 5.0 mm and the slits ate 1.0 m from the...Problem 22P:
In Fig. 35-37. two isotropic point sources S1, and S2 emit identical light waves in phase at...Problem 24P:
In Fig. 35-39, two isotropic point sources S1 and S2 emit light in phase at wavelength and at the...Problem 25P:
GO In Fig. 35-40, two isotropic point sources of light S1 and S2 are separated by distance 2.70 m...Problem 26P:
In a doublc-slit experiment, the fourth-order maximum for a wavelength of 450 nm occurs at an angle...Problem 27P:
A thin flake of mica n = 1.58 is used to cover one slit of a double-slit interference arrangement....Problem 28P:
Go Figure 35-40 shows I two isotropic point sources of light S1 and S2 that emit in phase at...Problem 31P:
ILW Add the quantities y1= 10 sin t, y2 = 15sint 30, and y3 = 5.0sint 45 using the phasor method.Problem 32P:
GO In the double-slit experiment of Fig. 35-10. ihe electric fields of the waves arriving at point P...Problem 33P:
GO Three electromagnetic waves travel through a certain point P along an x axis. They are polarized...Problem 34P:
In Ihe double-slit experiment of Fig, 35-10, the viewing screen is at distance D = 4.00 m, point P...Problem 35P:
SSM We wish to coal flat glass n = 1.50 with a transparent material n = 1.25 so that reflection of...Problem 36P:
A 600-nm-thick soap film n = 1.40 in air is illuminated with white light in a direction...Problem 37P:
The rhinestones in costume jewelry are glass with index of refraction 1.50. To make them more...Problem 38P:
White light is sent downward onto a horizontal thin film that is sandwiched between two materials....Problem 39P:
ilw Light of wavelength 624 nm is incident perpendicularly on a soap film n = 1, 33 suspended in...Problem 40P:
A thin film of acetone n = 1.25 coats a thick glass plate n = 1.50. White light is incident normal...Problem 41P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 42P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 43P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 44P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 45P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 46P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 47P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 48P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 49P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 50P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 51P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 52P:
41 through 52 GO 43, 51 SSM 47, 51 Reflection by thin layers. In Fig. 35-42, light is incident...Problem 53P:
The reflection of perpendicularly incident white light by a soap film in air has an interference...Problem 54P:
A plane wave of monochromatic light is incident normally on a uniform thin film of oil that covers a...Problem 55P:
SSM WWW A disabled tanker leaks kerosene n = 1.20 into the Persian Gulf, creating a large slick on...Problem 56P:
A thin film, with a thickness of 272.7 nm and with air on both sides, is illuminated with a beam of...Problem 57P:
57 through 68 GO 64, 65 SSM 59 Transmission through thin layers. In Fig. 35-43, light is incident...Problem 58P:
57 through 68 GO 64, 65 SSM 59 Transmission through thin layers. In Fig. 35-43, light is incident...Problem 59P:
57 through 68 GO 64, 65 SSM 59 Transmission through thin layers. In Fig. 35-43, light is incident...Problem 60P:
57 through 68 GO 64, 65 SSM 59 Transmission through thin layers. In Fig. 35-43, light is incident...Problem 61P:
Fig. 35-43, light is incident perpendicularly on a thin layer of material 2 that lies between...Problem 62P:
Fig. 35-43, light is incident perpendicularly on a thin layer of material 2 that lies between...Problem 63P:
Fig. 35-43, light is incident perpendicularly on a thin layer of material 2 that lies between...Problem 64P:
Fig. 35-43, light is incident perpendicularly on a thin layer of material 2 that lies between...Problem 65P:
Fig. 35-43, light is incident perpendicularly on a thin layer of material 2 that lies between...Problem 66P:
57 through 68 GO 64, 65 SSM 59 Transmission through thin layers In Fig. 35-43, light is incident...Problem 67P:
57 through 68 GO 64, 65 SSM 59 Transmission through thin layers In Fig. 35-43, light is incident...Problem 68P:
57 through 68 GO 64, 65 SSM 59 Transmission through thin layers In Fig. 35-43, light is incident...Problem 69P:
GO In Fig. 35-44, a broad beam of light of wavelength 630 nm is incident at 90 on a thin,...Problem 70P:
GO In Fig. 35-45, a broad beam of light of wavelength 620 nm is sent directly downward through the...Problem 71P:
In Fig. 35-45, two microscope slides touch at one end and are separated at the other end. When light...Problem 72P:
In Fig. 35-45, a broad beam of monochromatic light is directed perpendicularly through two glass...Problem 73P:
SSM In Fig. 35-45, a broad beam of light of wavelength 683 nm is sent directly downward through the...Problem 74P:
GO Two rectangular glass plates n = 1.60 are in contact along one edge and are separated along the...Problem 75P:
SSM ILW Figure 35-46a shows a lens with radius of curvature R lying on a flat glass plate and...Problem 76P:
The lens in a Newtons rings experiment see Problem 75 has diameter 20 mm and radius of curvature R =...Problem 78P:
A thin film of liquid is held in a horizontal circular ring, with air on both sides of the film. A...Problem 79P:
If mirror M2 in a Michelson interferometer Fig. 35-21 is moved through 0.233 mm, a shift of 792...Problem 80P:
A thin film with index of refraction n = 1.40 is placed in one arm of a Michelson interferometer,...Problem 81P:
SSM WWW In Fig. 35-48, an airtight chamber of length d = 5.0 cm is placed in one of the arms of a...Problem 82P:
The element sodium can emit light at two wavelengths, 1 = 588.9950 nm and 2 = 589.5924 nm. Light...Problem 84P:
GO In Figure 35-50, two isotropic point sources S1 and S2 emit light in phase at wavelength and at...Problem 85P:
SSM A double-slit arrangement produces bright interference fringes for sodium light a distinct...Problem 86P:
GO In Fig. 35-51a, the waves along rays 1 and 2 are initially in phase, with the same wavelength in...Problem 87P:
SSM In Fig. 35-51a, the waves along rays 1 and 2 are initially in phase, with the same wavelength ...Problem 88P:
Light of wavelength 700.0 nm is sent along a route of length 2000 nm. The route is then filled with...Problem 90P:
In Fig. 35-54, two isotropic point sources S1 and S2 emit light at wavelength = 400 nm. Source S1...Problem 92P:
Figure 35-56a shows two light rays that are initially in phase as they travel upward through a block...Problem 93P:
SSM If the distance between the first and tenth minima of a double-slit pattern is 18.0 mm and the...Problem 94P:
Figure 35-57 shows an optical fiber in which a central plastic core of index of refraction n1 = 1.58...Problem 95P:
SSM Two parallel slits are illuminated with monochromatic light of wavelength 500 nm. An...Problem 96P:
A camera lens with index of refraction greater than 1.30 is coated with a thin transparent film of...Problem 97P:
SSM Light of wavelength is used in a Michelson interferometer. Let x be the position of the movable...Problem 98P:
In two experiments, light is to be sent along the two paths shown in Fig. 35-35 by reflecting it...Problem 99P:
Figure 35-58 shows the design of a Texas arcade game. Four laser pistols are pointed toward the...Problem 100P:
A thin film suspended in air is 0.410 m thick and is illuminated with white light incident...Problem 101P:
Find the slit separation of a double-slit arrangement that will produce interference fringes 0.018...Problem 102P:
In a phasor diagram for any point on the viewing screen for the two-slit experiment in Fig. 35-10,...Browse All Chapters of This Textbook
Chapter 1 - MeasurementChapter 2 - Motion Along A Straight LineChapter 3 - VectorsChapter 4 - Motion In Two And Three DimensionsChapter 5 - Force And Motion - IChapter 6 - Force And Motion - IiChapter 7 - Kinetic Energy And WorkChapter 8 - Potential Energy And Conservation Of EnergyChapter 9 - Center Of Mass And Linear MomentumChapter 10 - Rotation
Chapter 11 - Rolling, Torque And Angular MomentumChapter 12 - Equillibrium And ElasticityChapter 13 - GravitationChapter 14 - FluidsChapter 15 - OscillationsChapter 16 - Waves - IChapter 17 - Waves - IiChapter 18 - Temperature Heat And The First Law Of ThermodynamicsChapter 19 - Kinetic Theory Of GasesChapter 20 - Entropy And The Second Law Of ThermodynamicsChapter 21 - Coulomb's LawChapter 22 - Electric FieldsChapter 23 - Gauss' LawChapter 24 - Electric PotentialChapter 25 - CapacitanceChapter 26 - Current And ResistanceChapter 27 - CircuitsChapter 28 - Magnetic FieldsChapter 29 - Magnetic Fields Due To CurrentsChapter 30 - Induction And InductanceChapter 31 - Electromagnetic Oscillations And Alternating CurrentChapter 32 - Maxwell's Equations; Magnetism Of MatterChapter 33 - Electromagnetic WavesChapter 34 - ImagesChapter 35 - InterferenceChapter 36 - DiffractionChapter 37 - RelativityChapter 38 - Photons And Matter WavesChapter 39 - More About Matter WavesChapter 40 - All About AtomsChapter 41 - Conduction Of Electricity In SolidsChapter 42 - Nuclear PhysicsChapter 43 - Energy From The NucleusChapter 44 - Quarks, Leptons And The Big Bang
Sample Solutions for this Textbook
We offer sample solutions for FUND.OF PHYSICS(LL)-PRINT COMP-W/ACCESS homework problems. See examples below:
Given: Radius of the earth: 6.37×106m. Calculations: a) The circumference of sphere is 2πR. So, the...Chapter 2, Problem 1QChapter 3, Problem 1QChapter 4, Problem 1QChapter 5, Problem 1QChapter 6, Problem 1QChapter 7, Problem 1QChapter 8, Problem 1QChapter 9, Problem 1Q
Chapter 10, Problem 1QChapter 11, Problem 1QChapter 12, Problem 1QChapter 13, Problem 1QChapter 14, Problem 1QChapter 15, Problem 1Q1) Concept: We can use the concept of the equation of transverse wave and speed of a travelling...1) Concept: The rate of energy transported by a travelling wave depends on the intensity of the wave...Chapter 18, Problem 1QChapter 19, Problem 1QChapter 20, Problem 1QChapter 21, Problem 1QChapter 22, Problem 1QChapter 23, Problem 1QChapter 24, Problem 1QChapter 25, Problem 1QChapter 26, Problem 1QChapter 27, Problem 1Q1) Concept: We can use the right hand rule to find the direction of force. For the possible...1) Concept: We can find the net magnetic field at the center of each circuit using the formula for...Chapter 30, Problem 1QChapter 31, Problem 1QChapter 32, Problem 1Q1) Concept: Analyzing the given equation, we can find the direction of the electromagnetic wave and...Chapter 34, Problem 1QChapter 35, Problem 1QChapter 36, Problem 1QChapter 37, Problem 1Q1) Concept: We can write the formula for energy of photon in terms of momentum. From this, we can...1) Concept: Using the formula for ground state energy of an electron in one dimensional infinite...For a given quantum number n there are n possible values of l, ranging from 0 to n −1. For each l...Explanations 1) Concept An isolated atom can exist in only a discrete set of energy levels. As atoms...Given: i. A radionuclide 196I decays by emitting an electron. ii. Refer to Fig 42.6 of the textbook...Given: i. A nuclear reaction 235U + n 132Sn + + 3n . ii. Refer to Appendix F and G of the textbook...Given: The list of conservation laws that are given is: a) Energy b) Angular momentum c) Charge d)...
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