Evolution of Atomic Theory Quiz
The question sheet
Reveal any answer as you study-
Which scientist discovered the electron using a cathode ray tube?
- Robert Millikan
- James Chadwick
- J. J. Thomson
- Ernest Rutherford
Reveal answer
Answer: J. J. Thomson
Source evidence
PDF page 83: something smaller? In the late 1800s, a number of scientists interested in questions like these investigated the electrical discharges that could be produced in low-pressure gases, with the most significant discovery made by English physicist J. J. Thomson using a cathode ray tube. This apparatus consisted of a sealed glass tube from which almost all the air had been removed; the tube contained two metal electrodes. When high voltage was applied across the electrodes, a visible beam called a cathode ray appeared between them. This beam was deflected toward the positive charge and away from the negative charge, and was produced in the same way with identical properties when different metals were used for the electrodes. In similar experiments, the ray was simultaneously deflected by an applied magnetic field, and measurements of the extent of deflection and the magnetic field strength allowed Thomson to calculate the charge-to-mass ratio of the cathode ray particles. The results of these measurements indicated that these particles were much lighter than atoms (Figure 2.6).
-
In the cathode ray tube, the beam was deflected in which way?
- Toward negative, away from positive
- It was never deflected
- Toward positive, away from negative
- Only by magnetic fields
Reveal answer
Answer: Toward positive, away from negative
Source evidence
PDF page 83: something smaller? In the late 1800s, a number of scientists interested in questions like these investigated the electrical discharges that could be produced in low-pressure gases, with the most significant discovery made by English physicist J. J. Thomson using a cathode ray tube. This apparatus consisted of a sealed glass tube from which almost all the air had been removed; the tube contained two metal electrodes. When high voltage was applied across the electrodes, a visible beam called a cathode ray appeared between them. This beam was deflected toward the positive charge and away from the negative charge, and was produced in the same way with identical properties when different metals were used for the electrodes. In similar experiments, the ray was simultaneously deflected by an applied magnetic field, and measurements of the extent of deflection and the magnetic field strength allowed Thomson to calculate the charge-to-mass ratio of the cathode ray particles. The results of these measurements indicated that these particles were much lighter than atoms (Figure 2.6).
-
Why did Thomson conclude cathode ray particles were negatively charged?
- They glowed on screens
- They were massive
- They passed through foil
- Attracted by positive charges
Reveal answer
Answer: Attracted by positive charges
Source evidence
PDF page 83: Based on his observations, here is what Thomson proposed and why: The particles are attracted by positive (+) charges and repelled by negative (−) charges, so they must be negatively charged (like charges repel and unlike charges attract); they are less massive than atoms and indistinguishable, regardless of the source material, so they must be fundamental, subatomic constituents of all atoms. Although controversial at the time, Thomson’s idea was gradually accepted, and his cathode ray particle is what we now call an electron, a negatively charged, subatomic particle with a mass more than one thousand-times less that of an atom. The term “electron” was coined in 1891 by Irish physicist George Stoney, from “electric ion.”
-
What did Thomson's cathode ray particles come to be called?
- Electron
- Alpha particle
- Proton
- Neutron
Reveal answer
Answer: Electron
Source evidence
PDF page 83: Based on his observations, here is what Thomson proposed and why: The particles are attracted by positive (+) charges and repelled by negative (−) charges, so they must be negatively charged (like charges repel and unlike charges attract); they are less massive than atoms and indistinguishable, regardless of the source material, so they must be fundamental, subatomic constituents of all atoms. Although controversial at the time, Thomson’s idea was gradually accepted, and his cathode ray particle is what we now call an electron, a negatively charged, subatomic particle with a mass more than one thousand-times less that of an atom. The term “electron” was coined in 1891 by Irish physicist George Stoney, from “electric ion.”
-
Who coined the term "electron" in 1891?
- Hantaro Nagaoka
- J. J. Thomson
- George Stoney
- Robert Millikan
Reveal answer
Answer: George Stoney
Source evidence
PDF page 83: Based on his observations, here is what Thomson proposed and why: The particles are attracted by positive (+) charges and repelled by negative (−) charges, so they must be negatively charged (like charges repel and unlike charges attract); they are less massive than atoms and indistinguishable, regardless of the source material, so they must be fundamental, subatomic constituents of all atoms. Although controversial at the time, Thomson’s idea was gradually accepted, and his cathode ray particle is what we now call an electron, a negatively charged, subatomic particle with a mass more than one thousand-times less that of an atom. The term “electron” was coined in 1891 by Irish physicist George Stoney, from “electric ion.”
-
Which experiment determined the charge on individual oil droplets?
- Millikan's oil drop experiment
- Gold foil experiment
- Chadwick's neutron test
- Cathode ray tube
Reveal answer
Answer: Millikan's oil drop experiment
Source evidence
PDF page 84: In 1909, more information about the electron was uncovered by American physicist Robert A. Millikan via his “oil drop” experiments. Millikan created microscopic oil droplets, which could be electrically charged by friction as they formed or by using X-rays. These droplets initially fell due to gravity, but their downward progress could be slowed or even reversed by an electric field lower in the apparatus. By adjusting the electric field strength and making careful measurements and appropriate calculations, Millikan was able to determine the charge on individual drops (Figure 2.7).
-
In Millikan's experiment, the charge of an oil droplet was always a multiple of what?
- The charge of a proton
- A specific fundamental charge
- A random value
- The mass of an atom
Reveal answer
Answer: A specific fundamental charge
Source evidence
PDF page 84: Looking at the charge data that Millikan gathered, you may have recognized that the charge of an oil droplet is always
PDF page 84: a multiple of a specific charge, 1.6 × 10 C. Millikan concluded that this value must therefore be a fundamental charge—the charge of a single electron—with his measured charges due to an excess of one electron (1 times 1.6 ×
-
Millikan concluded the fundamental charge he measured was the charge of a single what?
- Neutron
- Atom
- Electron
- Proton
Reveal answer
Answer: Electron
Source evidence
PDF page 84: a multiple of a specific charge, 1.6 × 10 C. Millikan concluded that this value must therefore be a fundamental charge—the charge of a single electron—with his measured charges due to an excess of one electron (1 times 1.6 ×
-
What two pieces of data allowed scientists to calculate the mass of the electron?
- Field strength and gravity
- Mass and volume
- Voltage and current
- Charge and charge-to-mass ratio
Reveal answer
Answer: Charge and charge-to-mass ratio
Source evidence
PDF page 84: droplet. Since the charge of an electron was now known due to Millikan’s research, and the charge-to-mass ratio was
PDF page 84: 11 1.759 × 10 C Scientists had now established that the atom was not indivisible as Dalton had believed, and due to the work of Thomson, Millikan, and others, the charge and mass of the negative, subatomic particles—the electrons—were
-
In 1904, Thomson proposed which model of the atom?
- Plum pudding model
- Solar system model
- Nuclear model
- Saturn model
Reveal answer
Answer: Plum pudding model
Source evidence
PDF page 85: known. However, the positively charged part of an atom was not yet well understood. In 1904, Thomson proposed the “plum pudding” model of atoms, which described a positively charged mass with an equal amount of negative charge in the form of electrons embedded in it, since all atoms are electrically neutral. A competing model had been proposed in 1903 by Hantaro Nagaoka, who postulated a Saturn-like atom, consisting of a positively charged sphere surrounded by a halo of electrons (Figure 2.8).
-
Who proposed the Saturn-like atom model in 1903?
- Ernest Rutherford
- Frederick Soddy
- Hantaro Nagaoka
- J. J. Thomson
Reveal answer
Answer: Hantaro Nagaoka
Source evidence
PDF page 85: known. However, the positively charged part of an atom was not yet well understood. In 1904, Thomson proposed the “plum pudding” model of atoms, which described a positively charged mass with an equal amount of negative charge in the form of electrons embedded in it, since all atoms are electrically neutral. A competing model had been proposed in 1903 by Hantaro Nagaoka, who postulated a Saturn-like atom, consisting of a positively charged sphere surrounded by a halo of electrons (Figure 2.8).
-
What particles did Rutherford aim at the thin gold foil?
- Electrons
- Protons
- Neutrons
- Alpha particles
Reveal answer
Answer: Alpha particles
Source evidence
PDF page 85: The next major development in understanding the atom came from Ernest Rutherford, a physicist from New Zealand who largely spent his scientific career in Canada and England. He performed a series of experiments using a beam of high-speed, positively charged alpha particles (α particles) that were produced by the radioactive decay of radium; α particles consist of two protons and two neutrons (you will learn more about radioactive decay in the chapter on nuclear chemistry). Rutherford and his colleagues Hans Geiger (later famous for the Geiger counter) and Ernest Marsden aimed a beam of α particles, the source of which was embedded in a lead block to absorb most of the radiation, at a very thin piece of gold foil and examined the resultant scattering of the α particles using a luminescent screen that glowed briefly where hit by an α particle. What did they discover? Most particles passed right through the foil without being deflected at all. However, some were diverted slightly, and a very small number were deflected almost straight back toward the source (Figure 2.9). Rutherford described finding these results: “It was quite the most incredible event that has ever happened to me in my life. It was almost as incredible as if you fired a 15-inch shell at a piece of tissue paper and it came back and hit
Chemistry: Atoms First
Chemistry: Atoms First by OpenStax, used under CC BY 4.0. Changes made by Stratacademy.
Make your own — free
Turn any notes into a game in under a minute. Free to start.