Lecturer(s)
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Poslední Petr, PhDr. Ph.D.
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Course content
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List of tasks, 10 out of which will be selected: 1. Verification of Stefan-Boltzmann law 2. Measuring of Planck constant by photo effect 3. Radiation pattern of a light bulb 4. Measuring of electrooptical material transparency 5. Measuring of polarization state of a light beam 6. Measuring of liquids dispersion and determination of Abbe number 7. Determining of the concentration of sugar solution by means of a polarimeter 8. Examination of the diffraction 9. Determination of light wave length by means of deflection grate 10. Determination of Rydberger constant by means of a spectrometer 11. X-ray diffractometer measurements 12. Geiger-Müller computer 13. Poisson distribution 14. Particle range 15. Beta particles range 16. Ion chamber 17. Backscatter of beta particles 18. Neutron source study
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Learning activities and teaching methods
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Laboratory work
- Contact hours
- 26 hours per semester
- Presentation preparation (report) (1-10)
- 10 hours per semester
- Preparation for laboratory testing; outcome analysis (1-8)
- 8 hours per semester
- Preparation for formative assessments (2-20)
- 8 hours per semester
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prerequisite |
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Knowledge |
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The students should have mastered basic facts about atomic and nuclear physics and optics at the level of basic university course in general physics. |
learning outcomes |
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The students will be able to employ basic measuring methods in atomic and nuclear physics and physical optics, to handle specialised measuring instruments, process the measurement and evaluate errors. |
Skills |
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Student dokáže ovládat příslušné speciální měřicí přístroje, umí zpracovat měření a hodnotit jeho chyby. |
teaching methods |
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Knowledge |
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Laboratory work |
assessment methods |
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Skills demonstration during practicum |
Individual presentation at a seminar |
Recommended literature
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Rauner, K., Prokšová, J., Havel, V. Fyzikální praktikum II.. ZČU Plzeň, 1999. ISBN 80-7082-505-7.
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