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AP EAMCET / TS EAMCET Physics - Electromagnetism and Modern Physics Flashcards
65 question-and-answer cards covering Physics - Electromagnetism and Modern Physics as it is examined in AP EAMCET / TS EAMCET. 24 of them are printed below, taken from across the deck — no signup, no paywall on the preview.
24 sample cards from the Physics - Electromagnetism and Modern Physics deck
Sampled from the end of the deck, so these are different cards from the ones shown on the syllabus page.
State the laws of reflection of light.
1) The incident ray, reflected ray and normal at the point of incidence lie in the same plane. 2) The angle of incidence equals the angle of reflection (i = r).
State Snell's law of refraction and define refractive index.
n₁·sin i = n₂·sin r, where i and r are angles of incidence and refraction. Refractive index n = c/v = (speed of light in vacuum)/(speed in medium); it measures how much a medium bends light.
Define critical angle and the condition for total internal reflection.
Critical angle C is the angle of incidence in the denser medium for which the refraction angle is 90°; sin C = 1/n. Total internal reflection occurs when light travels from a denser to a rarer medium and the angle of incidence exceeds C.
Give the mirror formula and the lens formula.
Mirror formula: 1/v + 1/u = 1/f. Lens formula: 1/v − 1/u = 1/f, where u is object distance, v image distance, f focal length (sign convention applies). Magnification m = h'/h = −v/u (mirror) or v/u (lens).
State the lens maker's formula.
1/f = (n − 1)(1/R₁ − 1/R₂), where n is the refractive index of the lens material relative to surroundings, and R₁, R₂ are the radii of curvature of the two surfaces.
Define power of a lens and its SI unit.
Power P = 1/f (f in metres). SI unit: dioptre (D), 1 D = 1 m⁻¹. Converging (convex) lenses have positive power, diverging (concave) lenses negative power. Powers of lenses in contact add: P = P₁ + P₂.
State the condition for constructive and destructive interference in Young's double-slit experiment.
Constructive (bright fringe): path difference = nλ (n = 0,1,2...). Destructive (dark fringe): path difference = (n + ½)λ. Fringe width β = λD/d, where D is slit-to-screen distance and d the slit separation.
Explain polarization and Brewster's law.
Polarization is the restriction of light's electric field vibrations to one plane, possible only for transverse waves. Brewster's law: when light is incident at the polarizing angle θ_p, the reflected ray is fully polarized and tan θ_p = n (refractive index); the reflected and refracted rays are then perpendicular.
Explain why the sky is blue (Rayleigh scattering).
Rayleigh scattering by air molecules is proportional to 1/λ⁴, so shorter wavelengths (blue) scatter much more than longer (red). The scattered blue light reaches our eyes from all directions, making the sky appear blue; at sunset the long path scatters away blue, leaving red.
State Einstein's photoelectric equation and define work function.
K_max = hν − φ₀, where K_max is the maximum kinetic energy of emitted electrons, hν the photon energy, and φ₀ the work function (minimum energy to release an electron from the metal surface). Threshold frequency ν₀ = φ₀/h.
State the de Broglie hypothesis and give the wavelength formula.
Every moving particle has an associated wave (matter wave) with wavelength λ = h/p = h/(mv), where h is Planck's constant and p the momentum. This expresses the dual (wave–particle) nature of matter.
State Bohr's quantization condition and give the energy of the nth level of hydrogen.
Angular momentum is quantized: L = mvr = nh/(2π). Energy E_n = −13.6/n² eV for hydrogen; the negative sign indicates a bound state, and energy increases (less negative) for higher n.
Give the Rydberg formula for hydrogen spectral lines.
1/λ = R(1/n₁² − 1/n₂²), where R is the Rydberg constant (1.097 × 10⁷ m⁻¹) and n₂ > n₁. Lyman series: n₁=1 (UV); Balmer: n₁=2 (visible); Paschen: n₁=3 (IR).
Define mass defect and binding energy of a nucleus.
Mass defect Δm is the difference between the sum of masses of constituent nucleons and the actual nuclear mass. Binding energy = Δm·c² is the energy needed to split the nucleus into free nucleons; higher binding energy per nucleon means greater stability (maximum near iron).
State the law of radioactive decay and define half-life.
N = N₀·e^(−λt), where λ is the decay constant. Half-life T₁/₂ = 0.693/λ is the time for half the nuclei to decay. Activity A = λN.
Compare nuclear fission and nuclear fusion.
Fission: a heavy nucleus (e.g., U-235) splits into lighter nuclei releasing energy and neutrons; basis of reactors and atom bombs. Fusion: light nuclei (e.g., hydrogen isotopes) combine into a heavier nucleus releasing more energy per nucleon; powers stars, requires very high temperature/pressure.
Distinguish between intrinsic and extrinsic (doped) semiconductors.
Intrinsic: pure semiconductor (Si, Ge) where electrons and holes are equal in number, generated thermally. Extrinsic: doped with impurities — n-type (pentavalent donors, electrons majority) or p-type (trivalent acceptors, holes majority) — giving much higher conductivity.
Explain the working of a p-n junction diode under forward and reverse bias.
Forward bias (p to +, n to −): depletion layer narrows, barrier lowers, large current flows. Reverse bias (p to −, n to +): depletion layer widens, only a tiny saturation current flows. Thus the diode acts as a one-way valve (rectifier).
Differentiate between half-wave and full-wave rectification.
Half-wave rectifier uses one diode and converts only one half of the AC cycle to DC (output during alternate halves). Full-wave rectifier (two diodes with centre-tap, or bridge of four diodes) uses both halves, giving higher efficiency and a smoother, higher-frequency ripple output.
State the role of the three terminals of a transistor and its basic action.
A transistor (npn/pnp) has emitter (heavily doped, supplies carriers), base (thin, lightly doped, controls flow) and collector (collects carriers). A small base current controls a large collector current, enabling amplification and switching; current gain β = I_C/I_B.
State the truth tables of the basic logic gates AND, OR and NOT.
AND: output 1 only when all inputs 1. OR: output 1 when any input is 1. NOT: output is the inverse of input (0→1, 1→0). NAND and NOR are universal gates that can build any logic function.
List the basic elements of a communication system.
Transmitter (converts message into a signal suitable for the channel), communication channel/medium (carries the signal, e.g., wire or space), and receiver (recovers the original message). Noise is the unwanted signal added in the channel.
Define modulation and name its three types for analog signals.
Modulation is superimposing a low-frequency message signal onto a high-frequency carrier wave for efficient transmission. The three types are Amplitude Modulation (AM), Frequency Modulation (FM) and Phase Modulation (PM), depending on which carrier property varies with the message.
Why is modulation necessary, and what determines antenna height for transmission?
Modulation is needed because low-frequency audio signals require impractically large antennas, have low energy and would mix together. A high-frequency carrier allows a practical antenna (length ~λ/4), efficient radiation and multiplexing. Antenna size is set by the wavelength of the carrier.
What this deck covers
The Physics - Electromagnetism and Modern Physics deck follows the AP EAMCET / TS EAMCET Physics - Electromagnetism and Modern Physics syllabus — 5 chapters and 16 topics — so questions land on material that is genuinely examinable rather than trivia around it. That works out to roughly 13.0 cards per chapter.
Answers are written to be recallable, not just readable — averaging about 228 characters, which is long enough to carry the reasoning and short enough to say out loud.
A deck like this earns its keep on the second and third pass. Read the syllabus first so you know the shape of the subject, then use the cards to find the specific facts that have not stuck.
Physics - Electromagnetism and Modern Physics flashcards FAQ
How many Physics - Electromagnetism and Modern Physics flashcards are in this AP EAMCET / TS EAMCET deck?
65 cards. This page previews 24 of them, sampled evenly across the deck so you can judge the difficulty before installing anything.
Are these AP EAMCET / TS EAMCET flashcards free?
Yes. The preview here is free to read with no signup, and the full 65-card deck is free inside the Examius app.
What do the Physics - Electromagnetism and Modern Physics cards cover?
They follow the AP EAMCET / TS EAMCET Physics - Electromagnetism and Modern Physics syllabus — 5 chapters and 16 topics — so the questions track what is actually examinable.
How should I use these flashcards?
Read the syllabus first so you know the shape of the subject, then drill the deck. Examius schedules each card with spaced repetition, so cards you keep missing come back sooner and ones you know drift further apart.