QUESTION IMAGE
Question
- how did j.j. thomsons discovery of the electron change daltons atomic theory?
- order the following atomic models from earliest to latest:
a. quantum mechanical model
b. plum pudding model
c. nuclear model
d. solid sphere model
e. bohr model
- compare and contrast:
a. how is the bohr model different from the quantum mechanical model?
Question 3
Brief Explanations
Dalton's atomic theory stated that atoms are indivisible. Thomson's discovery of the electron showed that atoms have sub - atomic particles. This contradicted Dalton's idea of atoms being the smallest, indivisible units.
Brief Explanations
- The Solid Sphere Model (Dalton's model) was the earliest, proposing atoms as solid, indivisible spheres.
- The Plum Pudding Model (Thomson's model) came next, with electrons embedded in a positively charged “pudding”.
- The Nuclear Model (Rutherford's model) followed, with a dense nucleus and electrons around it.
- The Bohr Model (Bohr's model) was after that, with electrons in fixed orbits around the nucleus.
- The Quantum Mechanical Model is the most recent, describing electrons in terms of probability clouds.
Brief Explanations
- Bohr Model:
- Electrons move in fixed, circular orbits around the nucleus.
- Orbits have definite energies (quantized).
- Describes electrons as particles in specific paths.
- Quantum Mechanical Model:
- Describes electrons as probability clouds (orbitals) around the nucleus.
- Uses wave - particle duality and quantum numbers to define electron location.
- Does not have fixed, circular paths like the Bohr model.
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Thomson's discovery of the electron showed that atoms are not indivisible (as Dalton's theory proposed), but have smaller sub - atomic particles.