What this deck covers
This deck focuses on Refraction, giving you a quick way to review the definitions, rules, and examples that matter most for AP Physics 2.
Study Refraction in AP Physics 2 with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
0% Complete
What is the effect of refraction on a straight object in water?
Tap card or press Space to flip
The object appears bent or displaced at the surface. Light bends at the interface, creating optical illusion.
How well did you know it?
Card 1 / 56
Space to flip · ← / → to move · once flipped, → Got it · ← Still learning
This deck focuses on Refraction, giving you a quick way to review the definitions, rules, and examples that matter most for AP Physics 2.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: The object appears bent or displaced at the surface. Light bends at the interface, creating optical illusion.
Answer: The speed of light decreases. Light slows down in optically denser media.
Answer: θc=sin−1(1.331). Uses θc=sin−1(n1n2) with n2=1.
Answer: Wavelength in glass=1.5600nm. Wavelength scales inversely with refractive index.
Answer: Higher refractive index means higher optical density. Higher n means light travels slower in that medium.
Answer: The separation of light into colors by refraction. Different wavelengths refract by different amounts.
Answer: When light reflects entirely back into a medium beyond the critical angle. Occurs when angle exceeds critical angle in denser medium.
Answer: θc=sin−1(1.331). Uses θc=sin−1(n1n2) with n2=1.
Answer: Red light refracts the least. Red has lowest frequency and refracts least.
Answer: Violet light refracts the most. Violet has highest frequency and refracts most.
Answer: Wavelength in glass=1.5600nm. Wavelength scales inversely with refractive index.
Answer: Dispersion occurs, separating light into colors. Different colors refract at different angles through prism.
Answer: The refractive index of a vacuum is 1. Vacuum is the reference medium with n=1.
Answer: n=vc. Defines refractive index as ratio of speeds.
Answer: Chromatic aberration is caused by dispersion. Different colors focus at different points due to dispersion.
Answer: Wavelength decreases. Frequency stays constant, so λ=fv decreases as v decreases.
Answer: Light bends toward the normal. Higher optical density causes light to bend toward the normal.
Answer: θ2=sin−1(1.33sin(45o)). Light bends toward normal when entering denser medium.
Answer: Apparent depth is less than actual depth due to refraction. Light bends away from normal when exiting water.
Answer: Light will follow the same path if its direction is reversed. Light paths are reversible due to symmetry of physics.
Answer: Red light refracts the least. Red has lowest frequency and refracts least.
Answer: Violet light refracts the most. Violet has highest frequency and refracts most.
Answer: Refraction is the bending of light as it passes from one medium to another. Light changes direction when moving between media with different optical densities.
Answer: θ2=sin−1(1.5×sin(45o)). Light exits glass into air, bending away from normal.
Answer: Higher refractive index means higher optical density. Higher n means light travels slower in that medium.
Answer: The pool appears shallower due to refraction. Refraction makes objects appear closer to surface.
Answer: Refractive index decreases with increasing temperature. Higher temperature decreases gas density, reducing n.
Answer: The index of refraction is dimensionless. It's a ratio of speeds, so no units.
Answer: The speed of light decreases. Light slows down in optically denser media.
Answer: Frequency remains constant; speed changes. Energy conservation requires frequency to remain constant.
Answer: When light reflects entirely back into a medium beyond the critical angle. Occurs when angle exceeds critical angle in denser medium.
Answer: The index of refraction measures how much light slows in a medium. Compares light speed in a medium to speed in vacuum (c).
Answer: The angle of incidence at which light is refracted along the boundary. Beyond this angle, total internal reflection occurs instead.
Answer: v=1.33c. Light speed equals vacuum speed divided by refractive index.
Answer: Higher frequency light refracts more than lower frequency. Higher frequency means higher energy and greater refraction.
Answer: v=nc. Relates medium speed to vacuum speed through refractive index.
Answer: Increasing wavelength decreases the angle of refraction. Longer wavelengths have lower refractive indices.
Answer: The light exits parallel to its original path. Parallel entry and exit with lateral displacement only.
Answer: n1×sin(θ1)=n2×sin(θ2). Relates incident and refracted angles through refractive indices.
Answer: θ2=sin−1(1.33sin(45o)). Light bends toward normal when entering denser medium.
Answer: Light will follow the same path if its direction is reversed. Light paths are reversible due to symmetry of physics.
Answer: This phenomenon is called atmospheric refraction. Light bends through varying atmospheric density layers.
Answer: v=nc. Relates medium speed to vacuum speed through refractive index.
Answer: Refraction is the bending of light as it passes from one medium to another. Light changes direction when moving between media with different optical densities.
Answer: Light bends away from the normal. Lower optical density causes light to bend away from the normal.
Answer: θ2=sin−1(1.5sin(30o)). Applies Snell's law with n1=1 and n2=1.5.
Answer: The angle of incidence at which light is refracted along the boundary. Beyond this angle, total internal reflection occurs instead.
Answer: Light bends toward the normal. Higher optical density causes light to bend toward the normal.
Answer: n=2×1083×108=1.5. Direct calculation using n=vc.
Answer: Frequency remains constant; speed changes. Energy conservation requires frequency to remain constant.
Answer: The index of refraction measures how much light slows in a medium. Compares light speed in a medium to speed in vacuum (c).
Answer: A mirage is caused by refraction of light in varying air densities. Temperature gradients create layers with different refractive indices.
Answer: This phenomenon is called atmospheric refraction. Light bends through varying atmospheric density layers.
Answer: v=1.33c. Light speed equals vacuum speed divided by refractive index.
Answer: The separation of light into colors by refraction. Different wavelengths refract by different amounts.
Answer: The image can be magnified or minimized. Refraction at curved surfaces creates optical magnification effects.