Module 7: The Nature of Light
19 covered of 37 dot points
Lessons
- Light: Quantum Model
How the glow of hot objects and the electrons knocked out of metals by light forced physics to treat light as a stream of photons, each carrying energy hf.
60 min
- Special Relativity
Why the speed of light is the same for every observer, how that forces moving clocks to run slow and moving objects to shrink, and what it means for momentum and for the energy locked in mass.
70 min
130 minutes of reading, in syllabus order.
What the syllabus asks
Electromagnetic Spectrum
What is light?
investigate Maxwell’s contribution to the classical theory of electromagnetism, including:
not written yet
unification of electricity and magnetism
not written yet
prediction of electromagnetic waves
not written yet · needs a worked example
prediction of velocity (ACSPH113)ACSPH113
not written yet · needs a worked example
describe the production and propagation of electromagnetic waves and relate these processes qualitatively to the predictions made by Maxwell’s electromagnetic theory (ACSPH112, ACSPH113)ACSPH112 ACSPH113
not written yet · needs a worked example
conduct investigations of historical and contemporary methods used to determine the speed of light and its current relationship to the measurement of time and distance (ACSPH082)ACSPH082
not written yet · needs a worked example
conduct an investigation to examine a variety of spectra produced by discharge tubes, reflected sunlight or incandescent filaments
not written yet
investigate how spectroscopy can be used to provide information about:
not written yet
the identification of elements
not written yet
investigate how the spectra of stars can provide information on:
not written yet
surface temperature
not written yet
rotational and translational velocity
not written yet
density
not written yet
chemical composition
not written yet
Light: Wave Model
What evidence supports the classical wave model of light and what predictions can be made using this model?
conduct investigations to analyse qualitatively the diffraction of light (ACSPH048, ACSPH076)ACSPH048 ACSPH076
not written yet · needs a worked example
conduct investigations to analyse quantitatively the interference of light using double slit apparatus and diffraction gratings (ACSPH116, ACSPH117, ACSPH140)ACSPH116 ACSPH117 ACSPH140
not written yet · needs a worked example
analyse the experimental evidence that supported the models of light that were proposed by Newton and Huygens (ACSPH050, ACSPH118, ACSPH123)ACSPH050 ACSPH118 ACSPH123
not written yet · needs a worked example
conduct investigations quantitatively using the relationship of Malus’ Law for plane polarisation of light, to evaluate the significance of polarisation in developing a model for light (ACSPH050, ACSPH076, ACSPH120)ACSPH050 ACSPH076 ACSPH120
not written yet · needs a worked example
Light: Quantum Model
What evidence supports the particle model of light and what are the implications of this evidence for the development of the quantum model of light?
analyse the experimental evidence gathered about black body radiation, including Wien’s Law related to Planck's contribution to a changed model of light (ACSPH137)ACSPH137
taught and practised · 9 questions · Light: Quantum Model
taught and practised · 3 questions · Light: Quantum Model
investigate the evidence from photoelectric effect investigations that demonstrated inconsistency with the wave model for light (ACSPH087, ACSPH123, ACSPH137)ACSPH087 ACSPH123 ACSPH137
taught and practised · 6 questions · Light: Quantum Model
analyse the photoelectric effect as it occurs in metallic elements by applying the law of conservation of energy and the photon model of light, (ACSPH119)ACSPH119
taught and practised · 10 questions · Light: Quantum Model
Light and Special Relativity
How does the behaviour of light affect concepts of time, space and matter?
analyse and evaluate the evidence confirming or denying Einstein’s two postulates:
taught and practised · 4 questions · Special Relativity
the speed of light in a vacuum is an absolute constant
taught and practised · 3 questions · Special Relativity
all inertial frames of reference are equivalent (ACSPH131)ACSPH131
taught and practised · 2 questions · Special Relativity
investigate the evidence, from Einstein’s thought experiments and subsequent experimental validation, for time dilation and length contraction , and analyse quantitatively situations in which these are observed, for example:
taught and practised · 7 questions · Special Relativity
observations of cosmic-origin muons at the Earth’s surface
taught and practised · 2 questions · Special Relativity
atomic clocks (Hafele–Keating experiment)
taught and practised · 1 questions · Special Relativity
evidence from particle accelerators
taught and practised · 1 questions · Special Relativity
evidence from cosmological studies
taught and practised · 1 questions · Special Relativity
describe the consequences and applications of relativistic momentum with reference to:
taught and practised · 3 questions · Special Relativity
taught and practised · 1 questions · Special Relativity
the limitation on the maximum velocity of a particle imposed by special relativity (ACSPH133)ACSPH133
taught and practised · 2 questions · Special Relativity
Use Einstein’s mass–energy equivalence relationship to calculate the energy released by processes in which mass is converted to energy, for example: (ACSPH134)ACSPH134
taught and practised · 4 questions · Special Relativity
production of energy by the sun
taught and practised · 1 questions · Special Relativity
particle–antiparticle interactions, eg positron–electron annihilation
taught and practised · 1 questions · Special Relativity
combustion of conventional fuel
taught and practised · 2 questions · Special Relativity
Wording is the official syllabus, read from the NESA document by a parser. The full document.