Q.The equation E = pc is valid (A) for all sub-atomic particles (B) is valid for an electron but not for a photon (C) is valid for a photon but not for an electron (D) is valid for both an electron and a photon
🔒You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.
🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Photon Energy and the Particle Nature of Radiation
Einstein's 1905 postulate extended Planck's quantization idea -- originally proposed just to explain black-body radiation -- to ALL electromagnetic radiation: light itself, under appropriate conditions, behaves as a stream of discrete particle-like packets of energy called photons, each carrying energy E=hν=hc/λ. Since frequency and wavelength are inversely related, higher-frequency (shorter-wavelength) radiation like ultraviolet light carries far more energetic photons than lower-frequency radiation like visible red light or radio waves -- even though the everyday intensity (power) of a beam can be the same regardless of which kind of photon it is made of, simply by adjusting how many photons arrive per second. …
[!TLDR] E=pc is the relativistic energy-momentum relation for a MASSLESS particle -- it holds exactly for a photon (rest mass zero) but not for an electron, which has non-zero rest mass and instead obeys the fuller …
The general (special-relativistic) relation between a particle's total energy E, its momentum p, and its rest mass m0 is E2=(pc)2+(m0c2)2. For a particle with ZERO rest mass -- like a photon, which the chapter explicitly notes always travels at speed c and has zero rest mass in every frame of reference -- this reduces exactly to E=pc, which is precisely the relation p=E/c used throughout section 14.3 and 14.5 to define the photon's momentum.\n\nAn electron, in contrast, has a non-zero rest mass (m0=9.11×10−31 kg), so the (m0c2)2 term in the full relation does NOT vanish for it, and E=pc is not a valid relation for an electron in general -- an electron even at rest ($ …
Recall that E=pc follows from the full relativistic relation E2=(pc)2+(m0c2)2 only in the special case of zero rest mas …
Treating E=pc as a universal energy-momentum relation applicable to any particle, rather than recognising it as the special ma …
Showing the 12 most recent of 22 on this concept.
- CBSE 2026Set V11 markQ.In interaction with matter, light behaves as if it is made up of packets of energy called __________. Fill in the blank choosing the appropriate answer from the bracket: (photons, diffraction, polarity, monopoles, greater than unity, less than unity)
›Reveal solutionSolution
- CBSE 2026Set A1 markMCQQ.The momentum (p) of photon is (A) λ/h (B) h/λ (C) hc/λ (D) hλ
›Reveal solutionSolution
A photon's momentum is p = h/λ = E/c.
A photon of wavelength λ has energy E=hν=λhc. Since a photon travels at speed c, its momentum is
p=cE=chc/λ=λh.
…
- CBSE 2026Set ANNUAL1 markMCQQ.Assertion (A): The momentum of photon is p = h/λ. Reason (R): A photon act as a massless particle.(a) Both Assertion (A) and Reason (R) are true and Reason (R) is the correct explanation of Assertion (A).(b) Both Assertion (A) and Reason (R) are true, but Reason (R) is not the correct explanation of Assertion (A).(c) Assertion (A) is true, but Reason (R) is false.(d) Assertion (A) and Reason (R) both are false.
›Reveal solutionSolution
A photon's momentum p=h/λ follows directly from treating it as a massless particle with E=pc.
For a massless particle, relativistic energy is E=pc (since E2=p2c2+m2c4 and m=0). A photon's energy is also E=hν=λhc. Equating: pc=λhc⇒p=λh. This derivation explicitly use …
- CBSE 2026Set ANNUAL1 markMCQQ.A metal surface is illuminated by photons of energy 5 eV and 2.5 eV respectively. The ratio of their wavelengths of emitted radiation is ______.(a) 1 : 4(b) 1 : 2(c) 2 : 1(d) 4 : 1
›Reveal solutionSolution
Photon energy and wavelength are inversely related (E=hc/λ), so the ratio of wavelengths is the inverse of the ratio of energies.
For a photon, E=λhc⟹λ=Ehc.
For the two photons of energy E1=5 eV and E2=2.5 eV:
λ2λ1=hc/E2hc/E1=E1E2=52.5=21
…
- CBSE 2025Set 55/6/11 markMCQQ.The momentum (in kg m/s) of a photon of frequency 6.0×1014 Hz is: (A) 6.63×10−25 (B) 1.326×10−27 (C) 2.652×10−26 (D) 3.978×10−24
›Reveal solutionSolution
The momentum of a photon is given by p=λh=chν. For ν=6.0×1014 Hz, using h=6.63×10−34 J·s and c=3×108 m/s, the momentum is 1.326×10−27 kg m/s, which matches option (B).
The key idea here is that a photon, though massless, carries momentum. This is a purely quantum concept — you can't derive it from classical physics. The momentum of a photon is directly tied to its wave properties: the shorter the wavelength (or higher the frequency), the greater the momentum.
The formula you need is:
p=λh=chν
where h is Planck's constant (6.63×10−34 J·s), ν is the frequency, and c is the speed of light (3×108 m/s). This relation comes from combining E=hν (photon energy) with E=pc (energy-momentum relation for massless particles).
Now let's work through the calculation step by step.
-
Write down the given data
Frequency, ν=6.0×1014 Hz
Planck's constant, h=6.63×10−34 J·s
Speed of light, c=3×108 m/s
-
Apply the momentum formula
p=chν
- Substitute the values
p=3×108(6.63×10−34)×(6.0×1014)
- Multiply the numerator first
6.63×6.0=39.78
10−34×1014=10−20
So numerator = 39.78×10−20
- Divide by 3×108 …
-
- CBSE 2025Set D1 markMCQQ.The formula of kinetic mass of photon is (A) hν/c (B) hν/c^2 (C) hc/ν (D) c^2/hν
›Reveal solutionSolution
Equate the photon energy hν with mc²; solving gives m = hν/c².
A photon has energy E = hν. By mass–energy equivalence, an energy E corresponds to an effective mass m through E = mc².
Setting the two equal:
hν = mc² ⟹ m = hν/c²
…
- CBSE 2025Set A1 markQ.Match Column 'A' item 'Intensity of light' with the correct option from Column 'B' and write the correct pair. Column 'B' options:(i) Minimum energy to emit electrons from the surface(ii) Minimum frequency to emit electrons from the surface(iii) Frequency of photon(iv) Number of photons(v) Moving particle(vi) Photon(vii) Einstein.
›Reveal solutionSolution
Intensity of light corresponds to option (iv): the number of photons.
In Einstein's photon picture, the intensity of a beam of monochromatic light is determined by how many photons strike a given area per unit time (not by the energy of each individual photon, which instead depends only on frequency). Doubling the intensity of light of a fixed frequency doubles the number of photons per second, which in the photoelectric effect increases the photoelectric current (rate of electron em …
- CBSE 2025Set A1 markQ.Match Column 'A' item 'Particle nature of light' with the correct option from Column 'B' and write the correct pair. Column 'B' options:(i) Minimum energy to emit electrons from the surface(ii) Minimum frequency to emit electrons from the surface(iii) Frequency of photon(iv) Number of photons(v) Moving particle(vi) Photon(vii) Einstein.
›Reveal solutionSolution
The particle nature of light corresponds to option (vi): the photon.
While phenomena like interference, diffraction and polarisation reveal light's wave nature, the photoelectric effect (and Compton effect) reveal that light also behaves as a stream of discrete, localised energy packets called photons, each carrying energy E=hν and momentum p=h/λ, and interacting with matter (like an electron) as a single indivisible unit — just like a partic …
- CBSE 2024Set ANNUAL1 markMCQQ.The rest mass of photon is :(a) 1 kg(b) Infinite(c) 1 g(d) zero
›Reveal solutionSolution
A photon always travels at speed c and carries energy/momentum without ever being at rest, so its rest mass must be zero.
A photon is a quantum of electromagnetic energy. Its energy and momentum are related by E=pc (from relativity, valid for a massless particle), and separately E=hν. Applying the relativistic energy–momentum relation
E2=p2c2+m02c4
for a photon with E=pc, this forces m02c4=0, i.e. the rest mass m0=0. …
- CBSE 2022Set ANNUAL1 markMCQQ.Photons are electrically ____.(a) neutral(b) positive(c) negative(d) unpredictable
›Reveal solutionSolution
A photon carries energy and momentum but no electric charge.
A photon is the quantum (packet) of electromagnetic radiation. It carries energy E=hν and momentum p=hν/c, but it has zero rest mass and zero electric charge. Because photons are uncharged, they are not deflected by electric or m …
- CBSE 2022Set TERM21 markMCQQ.Momentum of Photon of frequency 'v' is:(a) zero(b) hv/c(c) hc/v(d) 2hc/v
›Reveal solutionSolution
A photon's momentum follows from E=hν and the relativistic relation E=pc for a massless particle.
…
- CBSE 2021Set A1 markMCQQ.The rest mass of photon is (A) zero (B) infinite (C) 9.1 × 10⁻³¹ kg (D) 1.6 × 10⁻²⁷ kg
›Reveal solutionSolution
The rest mass of a photon is zero.
A photon always moves with the speed of light c. From relativity, any particle with non-zero rest mass would require infinite energy to reach the speed c. Since a photon actually moves at c and carries finite energy E = hν and momentum p = E/c = h/λ, its rest …
🎓Unlock everything free for 14 days
- ✓Full step-by-step solutions
- ✓Concept-first explanations
- ✓Methods, shortcuts & mistakes
- ✓PYQ mapping + timed mock tests
Full access for 14 days. No credit card required.