Anmelden

Electric Charge in a Magnetic Field

Überblick

Source: Andrew Duffy, PhD, Department of Physics, Boston University, Boston, MA

This experiment duplicates J.J. Thomson's famous experiment at the end of the 19th century, in which he measured the charge-to-mass ratio of the electron. In combination with Robert A. Millikan's oil-drop experiment a few years later that produced a value for the charge of the electron, the experiments enabled scientists to find, for the first time, both the mass and the charge of the electron, which are key parameters for the electron.

Thomson was not able to measure the electron charge or the electron mass separately, but he was able to find their ratio. The same is true for this demonstration; although here there is the advantage of being able to look up the values for the magnitude of the charge on the electron(e) and the mass of the electron (me), which are now both known precisely.

Verfahren

1. Compensating for Earth's Magnetic Field

  1. Note that there are two independent circuits in this experiment:
    1. Supply current to the coils that create the magnetic field ( Figure 2). The current is set by a rotary dial, and the circuit includes a digital ammeter that allows the current to be measured. A double-pole double-throw switch is used to reverse the direction of the current supplied to the coils, which reverses the magnetic field.
    2. The second circui

Log in or to access full content. Learn more about your institution’s access to JoVE content here

Ergebnisse

Representative results for Section 2 can be seen in Table 1. Those values give an average charge-to-mass ratio of 1.717 x 10-11 C/kg. Note that that is the magnitude of the ratio, because the charge of the electron is a negative value.

Representative results for Section 3 can be seen in Table 1. Those values give an average charge-to-mass ratio of 1.677 x 10-11 C/kg. Again,

Log in or to access full content. Learn more about your institution’s access to JoVE content here

Anwendung und Zusammenfassung

This experiment, first performed by J.J. Thomson in the late 19th century, demonstrated the existence of the electron, making it a tremendously important experiment from a historical perspective. Electrons have since been exploited in countless electronic devices.

The following is a list of some applications of charged particles that are traveling in circular or spiral paths, and thus they are traveling in a magnetic field:

1)The formation of the Northern

Log in or to access full content. Learn more about your institution’s access to JoVE content here

Tags
Electric ChargeMagnetic FieldElectronsCurrentProtonsElectronsUnchargedElectromagnetic InteractionsJ J ThomsonCathode Ray TubeNegative ChargeCharge to mass RatioForce On A Charge In A Magnetic FieldLorentz ForceMagnitude Of ForceQVB Sine Theta

pringen zu...

0:06

Overview

1:20

Principles of Charges in a Magnetic Field

4:05

Experimental Setup

6:28

Data Analysis and Results

7:50

Applications

8:47

Summary

Videos aus dieser Sammlung:

article

Now Playing

Electric Charge in a Magnetic Field

Physics II

33.6K Ansichten

article

Electric Fields

Physics II

77.4K Ansichten

article

Electric Potential

Physics II

104.2K Ansichten

article

Magnetic Fields

Physics II

33.3K Ansichten

article

Investigation Ohm's Law for Ohmic and Nonohmic Conductors

Physics II

26.2K Ansichten

article

Series and Parallel Resistors

Physics II

33.1K Ansichten

article

Capacitance

Physics II

43.7K Ansichten

article

Inductance

Physics II

21.5K Ansichten

article

RC/RL/LC Circuits

Physics II

142.6K Ansichten

article

Semiconductors

Physics II

29.6K Ansichten

article

Photoelectric Effect

Physics II

32.6K Ansichten

article

Reflection and Refraction

Physics II

35.7K Ansichten

article

Interference and Diffraction

Physics II

90.8K Ansichten

article

Standing Waves

Physics II

49.6K Ansichten

article

Sound Waves and Doppler Shift

Physics II

23.4K Ansichten

JoVE Logo

Datenschutz

Nutzungsbedingungen

Richtlinien

Forschung

Lehre

ÜBER JoVE

Copyright © 2025 MyJoVE Corporation. Alle Rechte vorbehalten