SRJC Course Outlines

12/26/2024 10:08:09 PMPHYS 43 Course Outline as of Spring 2012

Changed Course
CATALOG INFORMATION

Discipline and Nbr:  PHYS 43Title:  MODERN PHYSICS  
Full Title:  Modern Physics for Scientists and Engineers
Last Reviewed:1/23/2023

UnitsCourse Hours per Week Nbr of WeeksCourse Hours Total
Maximum2.00Lecture Scheduled2.0017.5 max.Lecture Scheduled35.00
Minimum2.00Lab Scheduled06 min.Lab Scheduled0
 Contact DHR0 Contact DHR0
 Contact Total2.00 Contact Total35.00
 
 Non-contact DHR0 Non-contact DHR Total0

 Total Out of Class Hours:  70.00Total Student Learning Hours: 105.00 

Title 5 Category:  AA Degree Applicable
Grading:  Grade Only
Repeatability:  00 - Two Repeats if Grade was D, F, NC, or NP
Also Listed As: 
Formerly:  PHYS 4D

Catalog Description:
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This is a modern physics course intended for scientists and engineers and includes special relativity, atomic theory, quantum physics, and nuclear processes.

Prerequisites/Corequisites:
Course Completion of PHYS 42 and Course Completion or Current Enrollment PHYS 41 and MATH 2


Recommended Preparation:

Limits on Enrollment:

Schedule of Classes Information
Description: Untitled document
This is a modern physics course intended for scientists and engineers and includes special relativity, atomic theory, quantum physics, and nuclear processes.
(Grade Only)

Prerequisites:Course Completion of PHYS 42 and Course Completion or Current Enrollment PHYS 41 and MATH 2
Recommended:
Limits on Enrollment:
Transfer Credit:CSU;UC.
Repeatability:00 - Two Repeats if Grade was D, F, NC, or NP

ARTICULATION, MAJOR, and CERTIFICATION INFORMATION

Associate Degree:Effective:Inactive:
 Area:
 
CSU GE:Transfer Area Effective:Inactive:
 B1Physical ScienceSpring 1984
 
IGETC:Transfer Area Effective:Inactive:
 
CSU Transfer:TransferableEffective:Spring 1984Inactive:
 
UC Transfer:TransferableEffective:Spring 1984Inactive:
 
C-ID:
 CID Descriptor: PHYS 200S Calculus-Based Physics for Scientists and Engineers: ABC SRJC Equivalent Course(s): PHYS40 AND PHYS41 AND PHYS42 AND PHYS43

Certificate/Major Applicable: Major Applicable Course



COURSE CONTENT

Outcomes and Objectives:
At the conclusion of this course, the student should be able to:
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Upon completion of the course, the student should be able to:
1. State the postulates of Einstein's theory of Special Relativity and solve problems involving space-time transformations.
2. Describe the historical development of quantum theory and solve problems involving black body radiation, photoelectric effect and Compton scattering.   
3. Explain the Bohr model and reproduce the derivation of the Rydberg formula for the spectral emission lines of atomic hydrogen.
4. Describe the shell and subshell structure of orbital electrons relating this structure to the periodic table.
5. Explain and solve problems regarding wave-particle duality for both photons and electrons.
6. Derive and solve problems using the Heisenberg principle.
7. Solve problems using the one-dimensional nonrelativistic Schroedinger wave equation to determine probabilities and expectation values of physically measurable quantities.
8. Write radioactive decay equations and solve problems involving half-lives and Q values.
9. Explain and solve problems involving cross sections in nuclear reactions.
10. Write equations for nuclear interactions and calculate threshold energies and Q values.
11. Sketch and describe the significance of the curve of binding energy per nucleon versus mass number.
12. Describe the components of and processes occurring in fission and fusion nuclear reactors and bombs.
13. List the fundamental particles and interactions included in the Standard Model of physics.

Topics and Scope
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1. Special Relativity
      a. transformation of space and time coordinates
      b. length contraction and time dilation
      c. relativistic momentum and energy
      d. relativistic addition of velocities
2. Early Quantum Physics
      a. black body radiation and Max Planck
      b. the photoelectric effect and the photon
      c. Compton scattering
3. The Bohr Model of the Atom
      a. quantization of angular momentum
      b. energy levels and spectra
      c. the periodic table and electron shells and subshells
4. Early Wave Mechanics
     a. DeBroglie hypothesis and electron diffraction
     b. Heisenberg uncertainty principle
     c. particle-wave duality
5. The Schroedinger Wave Equation
     a. solution of infinite square well potential & hydrogen atom.
     b. probability and expectation values (square well, quantum oscillator, hydrogen atom)
6. Nuclear Processes
    a. nuclear structure, binding energy
    b. radioactive decay - half life, decay modes, Q values, cross sections
    c. fission nuclear reactors, fission products
    d. fusion reactions - fusion reactors
7. Elementary Particles
    a. accelerators and detectors
    b. the Standard Model - leptons, quarks, mesons and baryons
8. Other topics as time allows (solid state intro., lasers, superconductivity, Cosmology, general relativity, etc.)

Assignments:
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1. 8-15 homework problem sets.
2. 1-5 written assignments.
3. 5-15 quizzes.
4. 2-4 mid-term exams.
5. Final exam.
6. Special Project (optional) 15-20 minute oral presenation which may include a written report.

Methods of Evaluation/Basis of Grade.
Writing: Assessment tools that demonstrate writing skill and/or require students to select, organize and explain ideas in writing.Writing
0 - 0%
None
This is a degree applicable course but assessment tools based on writing are not included because problem solving assessments are more appropriate for this course.
Problem solving: Assessment tools, other than exams, that demonstrate competence in computational or non-computational problem solving skills.Problem Solving
15 - 25%
Homework problem sets
Skill Demonstrations: All skill-based and physical demonstrations used for assessment purposes including skill performance exams.Skill Demonstrations
0 - 0%
None
Exams: All forms of formal testing, other than skill performance exams.Exams
75 - 85%
Problem solving exams, objective exams (multiple choice, true false, matching, completion, short essay. etc.), quizzes, mid-terms, final exam.
Other: Includes any assessment tools that do not logically fit into the above categories.Other Category
0 - 10%
Special project may include writing


Representative Textbooks and Materials:
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Physics for Scientists and Engineers, Serway and Jewett, Volume 5, 8th edition, Thomson, 2010
 
Modern Physics for Scientists and Engineers, 3rd Edition, Stephen Thornton and Andrew Rex, Thompson and Brooks Cole, 2006          (Classic text)

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