Problem 1CQ: By moving a 10 nC charge from point A to point B, you determine that the electric potential at B is... Problem 2CQ: Charge q is fired through a small hole in the positive plate of a capacitor, as shown in Figure Q21... Problem 3CQ: Why is the potential energy of two opposite charges a negative number? (Note: Saying that the... Problem 4CQ: An electron (q = e) completes half of a circular orbit of radius r around a nucleus with Q = +3e, as... Problem 5CQ: An electron moves along the trajectory from i to f in Figure Q21.5 Figure Q21.5 A. Does the electric... Problem 6CQ: The graph in Figure Q21.61Q shows the electric potential along the x-axis. Draw a graph of the... Problem 7CQ: As shown in Figure Q21.7, two protons are launched with the same speed from point 1 inside a... Problem 8CQ: Each part of Figure Q21.8 shows one or more point charges. The charges have equal magnitudes. If a... Problem 9CQ: Figure Q21.9 shows two points inside a capacitor. Let V = 0 V at the negative plate. Figure Q21.9 A.... Problem 10CQ: A capacitor with plates separated by distanced is charged to a potential difference Vc-. All wires... Problem 11CQ: Rank in order, from most positive to most negative, the electric potentials V1, to V5 at points 1 to... Problem 12CQ: Figure Q21.12 shows two points near a positive point charge. Figure Q21.12 A. What is the ratio... Problem 14CQ: A. Suppose that E = 0, throughout some region of space. Can you conclude that V = 0 V in this... Problem 15CQ: Rank in order, from largest to smallest, the electric field strengths E2 E2, E3, and E4 at the four... Problem 16CQ: Figure Q21.16 shows an electric field diagram. Rank in order, from highest to lowest, the electric... Problem 17CQ: Figure Q21.17 shows a negatively charged electroscope. The gold leaf stands away from the rigid... Problem 18CQ: Rank in order, from largest to smallest, the energies (Uc)1 to (Uc)4 stored in each of the... Problem 19CQ: A parallel-plate capacitor with plate separation d is connected to a battery that has potential... Problem 20CQ: A proton is launched from point 1 in Figure Q21 .20 with an initial velocity of 3.9 105 m/s. By how... Problem 21MCQ: A 1.0 nC positive point charge is located at point A in Figure Q21.21. The electric potential at... Problem 22MCQ: A 100 V battery is connected across the plates of a parallel-plate capacitor. If a sheet of Teflon... Problem 23MCQ: The electric potential is 300 V at x = 0 cm, is 100 V at x = 5 cm, and varies linearly with x. If a... Problem 24MCQ: What is the potential at point c? A. 400 v B. 350 V C. 100 V D. 350 V E. 400 v Figure Q21.24 Problem 25MCQ: At which point, a, b, or c, is the magnitude of the electric field the greatest? Figure Q21.24 Problem 26MCQ: What is the approximate magnitude of the electric field at point c? A. 100 V/m B. 300 V/m C. 800 V/m... Problem 27MCQ: The direction of the electric field at point b is closest to which direction? A. Right B. Up C. Left... Problem 28MCQ: A +10 nC charge is moved from point c to point a. How much work is required in order to do this? A.... Problem 29MCQ: A bug zapper consists of two metal plates connected to a high-voltage power supply. The voltage... Problem 30MCQ: An atom of helium and one of argon are singly ionized-one electron is removed from each. The two... Problem 31MCQ: The dipole moment of the heart is shown at a particular instant in Figure Q21.31. Which of the... Problem 1P: Moving a charge from point A, where the potential is 300 V, to point B, where the potential is 150... Problem 2P: The graph in Figure P21.2 shows the electric potential energy as a function of separation for two... Problem 3P: It takes 3.0 J of work to move a 15 nC charge from point A to B. It takes 5.0 J of work to move the... Problem 4P: A 20 nC charge is moved from a point where V = 150 V to a point where V = 50 V. How much work is... Problem 5P: At one point in space, the electric potential energy of a 15 nC charge is 45 J. a. What is the... Problem 6P: An electron has been accelerated from rest through a potential difference of 1000 V. A. What is its... Problem 7P: A proton has been accelerated from rest through a potential difference of 1000 V. A. What is its... Problem 8P: What potential difference is needed to accelerate a He+ion (charge +e, mass 4 u) from rest to a... Problem 9P: An electron with an initial speed of 500,000 m/s is brought to rest by an electric field. a. Did the... Problem 10P: A proton with an initial speed of 800,000 m/s is brought to rest by an electric field. a. Did the... Problem 11P: The electric potential at a point that is halfway between two identical charged particles is 300 V.... Problem 12P: A 2.0 cm 2.0 cm parallel-plate capacitor has a 2.0 mm spacing. The electric field strength inside... Problem 13P: Two 2.00 cm 2.00 cm plates that form a parallel-plate capacitor are charged to 0.708 nC. What are... Problem 14P: A. In Figure P21.14, which capacitor plate, left or right, is the positive plate? Figure P21 .14 B.... Problem 15P: A +25 nC charge is at the origin. How much farther from the charge is the 2000 V equipotential... Problem 16P: A. What is the electric potential at points A, B, and C in Figure P21.16? Figure P21.16 B. What is... Problem 17P: A 1.0-cm-diameter sphere is charged to a potential of 3400 V. How much charge is on the sphere? Problem 18P: What is the electric potential at the point indicated with the dot in Figure P21.18? Figure P21.18 Problem 19P: a. What is the potential difference between the terminals of an ordinary AA or AAA battery? (If... Problem 20P: A. In Figure P21.20, which point, A or B, has a higher electric potential? Figure P21.20 B. What is... Problem 21P: In Figure P21.21, the electric potential at point A is 300 V. What is the potential at point B,... Problem 22P: What is the potential difference between xi = 10 cm and xf = 30 cm in the uniform electric field Ex... Problem 23P: What are the magnitude and direction of the electric field at the dot in Figure P21.23? Figure... Problem 24P: What are the magnitude and direction of the electric field at the dot in Figure P21 .24? Figure... Problem 27P: Two 2.0 cm 2.0 cm square aluminum electrodes, spaced 0.50 mm apart, are connected to a 100 V... Problem 28P: An uncharged capacitor is connected to the terminals of a 3.0 V battery, and 6.0 C flows to the... Problem 29P: You need to construct a 100 pF capacitor for a science project. You plan to cut two L L metal... Problem 30P: A switch that connects a battery to a 10 F capacitor is closed. Several seconds later you find that... Problem 31P: What is the voltage of a battery that will charge a 2.0 F capacitor to 48 C? Problem 32P: Two electrodes connected to a 9.0 V battery are charged to 45 nC. What is the capacitance of the... Problem 33P: Initially, the switch in Figure P21 .33 is open and the capacitor is uncharged. How much charge... Problem 34P: A 1.2 nF parallel-plate capacitor has an air gap between its plates. Its capacitance increases by... Problem 35P: A science-fair radio uses a homemade capacitor made of two 35 cm 35 cm sheets of aluminum foil... Problem 36P: A 25 pF parallel-plate capacitor with an air gap between the plates is connected to a 100 V battery.... Problem 37P: Two 2.0-cm-diameter electrodes with a 0.1 0-mm-thick sheet of Teflon between them are attached to a... Problem 38P: A parallel-plate capacitor is connected to a battery and stores 4.4 nC of charge. Then, while the... Problem 39P: A parallel-plate capacitor is charged by a 12.0 V battery, then the battery is removed. a. What is... Problem 40P: To what potential should you charge a 1.0 F capacitor to store 1.0 J of energy? Problem 41P: A pair of 10 F capacitors in a high-power laser are charged to 1.7 kV. a. What charge is stored in... Problem 42P: Capacitor 2 has half the capacitance and twice the potential difference as capacitor 1. What is the... Problem 43P: Two uncharged metal spheres, spaced 15.0 cm apart, have a capacitance of 24.0 pF. How much work... Problem 44P: 50 pJ of energy is stored in a 2.0 cm 2.0 cm 2.0 cm region of uniform electric field. What is the... Problem 45GP: A 2.0-cm-diameter parallel-plate capacitor with a spacing of 0.50 mm is charged to 200 V. What are... Problem 46GP: What is the change in electric potential energy of a 3.0 nC point charge when it is moved from point... Problem 47GP: What is the potential difference V34 in Figure P21.47? Figure P21.47 Problem 48GP: A 50 nC charged particle is in a uniform electric field E = (1 0 V/m, east) An external force moves... Problem 49GP: At a distance r from a point charge, the electric potential is 3000 V and the magnitude of the... Problem 50GP: The 4000 V equipotential surface is 10.0 cm farther from a positively charged particle than the 5000... Problem 51GP: What is the electric potential energy of the electron in Figure P21.51? The protons are fixed and... Problem 52GP: Two point charges 2.0 cm apart have an electric potential energy 180 J. The total charge is 30 nC.... Problem 53GP: Two positive point charges are 5.0 cm apart. If the electric potential energy is 72 J, what is the... Problem 54GP: A +3.0 nC charge is at x = 0 cm and a 1.0 nC charge is at x = 4 cm. At what point or points on the... Problem 55GP: A 3.0 nC charge is on the x-axis at x = 9 cm and a +4.0 nC charge is on the x-axis at x = 16 cm. At... Problem 57GP: A 10.0 nC point charge and a +20.0 nC point charge are 15.0 cm apart on the x-axis. a. What is the... Problem 58GP: A 2.0-mm-diameter glass bead is positively charged. The potential difference between a point 2.0 mm... Problem 59GP: In a semiclassical model of the hydrogen atom, the electron orbits the proton at a distance of 0.053... Problem 60GP: What is the electric potential at the point indicated with the dot in Figure P21.60? Figure P21.60 Problem 61GP: a. What is the electric potential at point A in Figure P21.61? Figure P21.61 B. What is the... Problem 62GP: A protons speed as it passes point A is 50,000 m/s. It follows the trajectory shown in Figure... Problem 63GP: A proton follows the path shown in Figure P21.63. Its initial speed is vo = 1.9 106 m/s. What is... Problem 64GP: Electric outlets have a voltage of approximately 120 V between the two parallel slots. Estimate the... Problem 65GP: Estimate the magnitude of the electric field in a cell membrane with a thickness of 8 nm. Problem 66GP: A Na+ion moves from inside a cell, where the electric potential is 70 mV, to outside the cell, where... Problem 67GP: Suppose that a molecular ion with charge 10e is embedded within the 5.0-nm-thick cell membrane of a... Problem 68GP: The electric field strength is 50,000 V/m inside a parallel-plate capacitor with a 2.0 mm spacing. A... Problem 69GP: A parallel-plate capacitor is charged to 5000 V. A proton is fired into the center of the capacitor... Problem 70GP: A proton is released from rest at the positive plate of a parallel-plate capacitor. It crosses the... Problem 71GP: The electric field strength is 20,000 V/m inside a parallel-plate capacitor with a 1.0 mm spacing.... Problem 72GP: In the early 1900s, Robert Millikan used small charged droplets of oil, suspended in an electric... Problem 73GP: Two 2.0-cm-diameter disks spaced 2.0 mm apart form a parallel-plate capacitor. The electric field... Problem 74GP: In proton-beam therapy, a high-energy beam of protons is fired at a tumor. The protons come to rest... Problem 75GP: A 2.5-mm-diameter sphere is charged to 4.5 nC. An electron fired directly at the sphere from far... Problem 76GP: A proton is fired from far away toward the nucleus of an iron atom. Iron is element number 26, and... Problem 77GP: Two 10.0-cm-diameter electrodes 0.50 cm apart form a parallel-plate capacitor. The electrodes are... Problem 78GP: Two 10.0-cm-diameter electrodes 0.50 cm apart form a parallel-plate capacitor. The electrodes are... Problem 79GP: Determine the magnitude and direction of the electric field at points 1 and 2 in Figure P21.79.... Problem 81GP: Figure P21.81 shows the electric potential on a grid whose squares are 5.0 cm on a side. Figure... Problem 82GP: A capacitor consists of two 6.0-cm-diameter circular plates separated by 1.0 mm. The plates are... Problem 83GP: The dielectric in a capacitor serves two purposes. It increases the capacitance, compared to an... Problem 84GP: The highest magnetic fields in the world are generated when large arrays, or banks, of capacitors... Problem 85GP: The flash unit in a camera uses a special circuit to "step up" the 3.0 V from the batteries to 300... Problem 86MSPP: A Lightning Strike Storm clouds build up large negative charges, as described in the chapter. The... Problem 87MSPP: A Lightning Strike Storm clouds build up large negative charges, as described in the chapter. The... Problem 88MSPP: A Lightning Strike Storm clouds build up large negative charges, as described in the chapter. The... Problem 89MSPP: A Lightning Strike Storm clouds build up large negative charges, as described in the chapter. The... Problem 90MSPP: A Lightning Strike Storm clouds build up large negative charges, as described in the chapter. The... format_list_bulleted