If \(\phi\) is the work function of photosensitive material in electron-volts and light of a wavelength of numerical value \(\lambda=\dfrac{{hc}}{{e}}\) metres is incident on it with energy above its threshold value at an instant, then the maximum kinetic energy of the photo-electron ejected by it at that instant is (in SI units): 
(take \(h\) as Plank's constant and \(c\) as the velocity of light in free space)
1. \({e}+2\phi \) 2. \(2{e}-\phi \)
3. \({e}-\phi \) 4. \({e}+\phi \)
Subtopic:  Einstein's Photoelectric Equation |
 81%
Level 1: 80%+
NEET - 2024
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Among the various types of electromagnetic radiation, the one with the smallest wavelength is:
1. \(\mathrm{X}\)-rays 2. Gamma rays
3. Ultraviolet rays 4. Microwaves
Subtopic:  Electromagnetic Spectrum |
 81%
Level 1: 80%+
NEET - 2024
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The equilibrium state of a thermodynamic system is described by:
A. Pressure B. Total heat
C. Temperature D. Volume
E. Work done
Choose the most appropriate answer from the options given below:
1. A, B and E only 2. B, C and D only
3. A, B and C only 4. A, C and D only
Subtopic:  Basic Terms |
 72%
Level 2: 60%+
NEET - 2024
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Some energy levels of a molecule are shown in the figure with their wavelengths of transitions.

Then:


1. \(\lambda_{3}>\lambda_{2},\lambda_{1}=2\lambda_{2}\)
2. \(\lambda_{3}>\lambda_{2},\lambda_{1}=4\lambda_{2}\)
3. \(\lambda_{1}>\lambda_{2},\lambda_{2}=2\lambda_{3}\)
4. \(\lambda_{2}>\lambda_{1},\lambda_{2}=2\lambda_{3}\)
Subtopic:  Spectral Series |
 55%
Level 3: 35%-60%
NEET - 2024
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A box of mass \(5 ~\text{kg}\) is pulled by a cord, up along a frictionless plane inclined at \(30^\circ\) with the horizontal. The tension in the cord is \(30~\text N.\) The acceleration of the box is: (take \(g=10~\text{ms}^{-2}\))
1. \(2~\text{ms}^{-2}\) 2. zero
3. \(0.1~\text{ms}^{-2}\) 4. \(1~\text{ms}^{-2}\)
Subtopic:  Tension & Normal Reaction |
 73%
Level 2: 60%+
NEET - 2024
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If the ratio of relative permeability and relative permittivity of a uniform medium is \(1 : 4.\) The ratio of the magnitudes of electric field intensity \((E)\) to the magnetic field intensity \((H)\) of an EM wave propagating in that medium is:\(\left(\text{Given that}\sqrt{\frac{\mu_0}{\varepsilon_0}}=120\pi\right)\)
1. \(30\pi:1\) 2. \(1:120\pi\)
3. \(60\pi:1\) 4. \(120\pi:1\)
Subtopic:  Properties of EM Waves |
Level 3: 35%-60%
NEET - 2024
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The value of the electric potential at a distance of \(9~\text{cm}\) from the point charge \(4\times10^{-7}~\text{C}\) is:
\(\left[\mathrm{Given}\dfrac{1}{4\pi\varepsilon_{0}}=9\times10^{9}~\text{N m}^{2}~\text{C}^{-2}\right]\)
1. \(4\times10^2~\text V\) 2. \(44.4~\text V\)
3. \(4.4\times10^5~\text V\) 4. \(4\times10^4~\text V\)
Subtopic:  Electric Potential |
 78%
Level 2: 60%+
NEET - 2024
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The displacement of a traveling wave is given by \(y=C\sin\dfrac{2\pi}{\lambda}({at}-x)\) where \(t\) is time, \(x\) is distance and \(\lambda\) is the wavelength, all in SI units. The frequency of the wave is:
1. \(\dfrac{2\pi\lambda}{a}\) 2. \(\dfrac{2\pi a}{\lambda}\)
3. \(\dfrac{\lambda}{a}\) 4. \(\dfrac{a}{\lambda}\)
Subtopic:  Wave Motion |
 79%
Level 2: 60%+
NEET - 2024
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An object of mass \(100 ~\text{kg}\) falls from point \(A\) to \(B\) as shown in the figure. The change in its weight, corrected to the nearest integer (\(R_E\) is the radius of the Earth), is:
    
1. \(49~\text N\)
2. \(89~\text N\)
3. \(5~\text N\)
4. \(10~\text N\)
Subtopic:  Acceleration due to Gravity |
 60%
Level 2: 60%+
NEET - 2024
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The potential energy of a particle moving along the \(x\text-\)direction varies as \({V}=\dfrac{{A}x^{2}}{\sqrt{x}+{B}}.\) The dimensions of \(\dfrac{A^2}{B}\) are:
1. \([{M}^{3/2}{L}^{1/2}{T}^{-3}]\) 2. \([M^{1/2}LT^{-3}]\)
3. \([{M}^2{L}^{1/2}{T}^{-4}]\) 4. \([ML^{2}T^{-4}]\)
Subtopic:  Dimensions |
 74%
Level 2: 60%+
NEET - 2024
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