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JEE Main Mock Test - 1 - Question 1

The energy required to remove the electron from a singly ionized Helium atom is 2.2 times the energy required to remove an electron from Helium atom. The total energy required to ionize the Helium atom completely is:

Detailed Solution for JEE Main Mock Test - 1 - Question 1

On removing an electron, the Helium atom becomes a single electron atom.
Applying Bohr's model, the energy of the single electron is given by 
(where Z is atomic number and n is number of the shell in which the electron resides).
Thus, the energy required is:

Energy required to remove the electron from singly ionized Helium atom = 54.4 eV

Energy required to remove the electron from Helium atom = x eV

So, 54.4 eV = 2.2x

x = 24.73 eV

Total energy required to ionize the Helium atom completely = 54.4 + 24.73 = 79.13 eV

Hence, the nearest option is 'C'.

JEE Main Mock Test - 1 - Question 2

The length, breadth and thickness of a rectangular sheet of metal are 4.234 m, 1.005 m, and 2.01 cm respectively. Give the volume of the sheet to correct significant figures.

Detailed Solution for JEE Main Mock Test - 1 - Question 2

Length , l = 4,234 m
Breadth, b = 1.005 m
Thickness , t = 2.01 x 10-2 m
Volume = l x b x t
⇒ V = 4.234 x 1.005 x 0.0201 = 0.0855289 = 0.0855 m3 (significant figure = 3)

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JEE Main Mock Test - 1 - Question 3

A rod PQ of mass M and length L is hinged at end P. The rod is kept horizontal by a massless string tied to point Q as shown in the figure. When the string is cut, the initial angular acceleration of the rod is:
[2013]

Detailed Solution for JEE Main Mock Test - 1 - Question 3

Weight of the rod will produce the torque,
τ = mg x L / 2 = I α = mL2 / 3 α (∵ Irod = ML2 / 3)
Hence, angular acceleration, α = 3g / 2L

JEE Main Mock Test - 1 - Question 4

A particle is projected with a velocity v, so that its range on a horizontal plane is twice the greatest height attained. If g is acceleration due to gravity, then its range is   

Detailed Solution for JEE Main Mock Test - 1 - Question 4

JEE Main Mock Test - 1 - Question 5

An object is said to be in uniform motion in a straight line if its displacement

Detailed Solution for JEE Main Mock Test - 1 - Question 5

Explanation:Uniform motion is the kind of motion in which a body covers equal displacement in equal intervals of time. It does not matter how small the time intervals are, as long as the displacements covered are equal.

If a body is involved in rectilinear motion and the motion is uniform, then the acceleration of the body must be zero.

JEE Main Mock Test - 1 - Question 6

Two cars are moving in same direction with speed of 30 kmph. They are separated by a distance of 5 km. What is the speed of a car moving in opposite direction if it meets the two cars at an interval of 4 min?   

Detailed Solution for JEE Main Mock Test - 1 - Question 6

Lets say the speed of second car be v. Now with respect to car 1, speed of car 2 is v - 30. Now if the cross each other at just after 4 min then the distance traveled by car 2 relative to car 1 is (v -30) x 4/60 and we know the distance travelled relatively is 5km
Thus we get 
(v -30) x 4/60 = 5
V = 300/4 - 30
= 45 km/h

JEE Main Mock Test - 1 - Question 7

A body starts from rest, the ratio of distances travelled by the body during 3rd and 4thseconds is :

Detailed Solution for JEE Main Mock Test - 1 - Question 7

The velocity after 2 sec = 2a and velocity after 3 sec = 3a
For some constant acceleration a,
Now distance travelled in third second, s3 = 2a + 1 / 2 a
= 5/2 a
Similarly distance travelled in fourth second, s4= 3a + 1 / 2 a
= 7/2 a
Hence the required ratio is 5/7

JEE Main Mock Test - 1 - Question 8

The magnetic field associated with a light wave is given, at the origin, by B = B0 [sin(3.14 × 107)ct + sin(6.28 × 107)ct]. If this light falls on a silver plate having a work function of 4.7 eV, what will be the maximum kinetic energy of the photo electrons ?
(c = 3 × 10ms-1, h = 6.6 × 10-34 J-s)

Detailed Solution for JEE Main Mock Test - 1 - Question 8

B = B0sin(π × 107C)t + B0sin (2π × 107C)t
Since there are two EM waves with different frequency, to get maximum kinetic energy, we take the photon with higher frequency.
B1 = B0sin(π × 107C)t  v1 = 107/2 x c 
B2 = B0sin(2π × 107C)t v2 = 107C
where C is speed of light C = 3 × 108 m/s
v2 > v1
so KE of photoelectron will be maximum for photon of higher energy.
v= 107C Hz
hv = φ + KEmax
energy of photon
Eph = hv = 6.6 × 10-34 × 107 × 3 × 109
Eph = 6.6 × 3 × 10-19J

KEmax = Eph - φ
= 12.375 - 4.7 = 7.675 eV  7.72 eV

JEE Main Mock Test - 1 - Question 9

One mole of an ideal monoatomic gas is compressed isothermally in a rigid vessel to double its pressure at room temperature, 27°C. The work done on the gas will be:

Detailed Solution for JEE Main Mock Test - 1 - Question 9

Work done in isothermal process on the gas,

JEE Main Mock Test - 1 - Question 10

The electric field at a point associated with a light wave is E = (100 Vm −1) sin [(3.0 ×1015s−1)t] sin [(6.0×1015s−1)t]. If this light falls on a metal surface having a work function of 2.0 eV, what will be the maximum kinetic energy of the photo electrons ?

Detailed Solution for JEE Main Mock Test - 1 - Question 10

JEE Main Mock Test - 1 - Question 11

A ray of light is incident at an angle of 60° on one face of a prism of angle 30°. The emergent ray of light makes an angle of 30° with incident ray. The angle made by the emergent ray with second face of prism will be:

Detailed Solution for JEE Main Mock Test - 1 - Question 11

For the prism, angle of deviation is given by:

Hence, emergent ray will be perpendicular to the second face or we say that the angle made by the emergent ray is 90°.

JEE Main Mock Test - 1 - Question 12

Both the nucleus and the atom of some element are in their respective first excited states. They get de-excited by emitting photons of wavelengths λN and λA, respectively. The ratio λNis closest to:

Detailed Solution for JEE Main Mock Test - 1 - Question 12

Energy of the emitted photon,

where EA and EN are energies of photons from atom and nucleus, respectively.

EA is order of eV and EN is order of MeV

JEE Main Mock Test - 1 - Question 13

A gravity meter can detect change in acceleration due to gravity (g) of the order of 10-9%. Calculate the smallest change in altitude near the surface of the earth that results in a detectable change in g. Radius of the earth R = 6.4 x 106m.

Detailed Solution for JEE Main Mock Test - 1 - Question 13

JEE Main Mock Test - 1 - Question 14

The diagram of a logic circuit is given below. The output F of the circuit is given by:

Detailed Solution for JEE Main Mock Test - 1 - Question 14

By law of distribution of Boolean Algebra, we have A+ (B. C) = (A+B). (A + C)
Step 1: Write outputs for the OR gates with inputs W and X, and W and Y.
Input for first OR gate are W and X. The output for this OR gate is, Y1 = W + X
Input for second OR gate are W and Y. The output for this OR gate is, Y2 = W + Y
Step 2: Write output for AND gate whose inputs are the output of OR gate.
F = Y1 • Y⇒ F = (W + X). (W + Y)
By using Law of distribution of Boolean Algebra, A + (B. C) = (A+B). (A + C)
Therefore, F = W + (X. Y)

JEE Main Mock Test - 1 - Question 15

In the circuit shown in the Figure, cell is ideal and R2 = 100Ω. A voltmeter of internal resistance 200Ω reads V12 = 4 V and V23 = 6 V between the pair of points 1 - 2 and 2 - 3 respectively. What will be the reading of the voltmeter between the points 1 - 3. 

Detailed Solution for JEE Main Mock Test - 1 - Question 15


Let emf of the cell be E. Current through the voltmeter (when connected between 1-2) is 
Current through R1 = 4/R1
∴ Current through 
∴ Potential difference across 

When the voltmeter is connected between 2 - 3
Current through voltmeter = 6/200 A
Current through R2 = 6/100 A
∴ Current through


From (1) and (2) 
Put this in 
When connected across 1-3, the voltmeter will read E = 12 V.

JEE Main Mock Test - 1 - Question 16

The energy required to separate the typical middle mass nucleus into its constituent nucleons is:

(Mass of 119.902199amu, mass of proton = 1.007825amu and mass of neutron = 1.008665amu)

Detailed Solution for JEE Main Mock Test - 1 - Question 16

Given, Z 50, A - Z = 120 - 50 = 70
Δm = Z.mp + (A - Z) mn - M= [50 × 1.007825 +70 × 1.008665 - 119.902199] = 1.095601 MeV
E = 1.095601 × 931.478 MeV = 1020.53 MeV ≈ 1021 MeV

JEE Main Mock Test - 1 - Question 17

The astronomical phenomenon when the planet Venus passes directly between the Sun and the earth is known as Venus transit. For two separate persons standing on the earth at points M and N, the Venus appears as black dots at points M' and N' on the Sun. The orbital period of Venus is close to 220 days. Assuming that both earth and Venus revolve on circular paths and taking distance MN = 1000 km, calculate the distance M'N' on the surface of the Sun.
[Take (2.75)1/3 = 1.4]

Detailed Solution for JEE Main Mock Test - 1 - Question 17

Let radius of circular orbit of the Earth and Venus be re and rv respectively (rc/rv) = (365/220)2 [Kepler's third law] 

From the drawing given in the problem M'N'/MN = N'V/NV

JEE Main Mock Test - 1 - Question 18

Consider the following figure:

Which of the following labelled points in the figure given above indicate an unstable state of an object?

Detailed Solution for JEE Main Mock Test - 1 - Question 18

Explanation: 

  • From the given graph we can see that the potential energy is minimum at point B and D
  • Whereas it has maximum potential energy at point A and C respectively
  • Hence point A and C will be an unstable state since they have maximum potential energy compared to B and D.
JEE Main Mock Test - 1 - Question 19

A straight wire of length L and radius a has a current I. A particle of mass m and charge q approaches the wire moving at a velocity v in a direction anti parallel to the current. The line of motion of the particle is at a distance r from the axis of the wire. Assume that r is slightly larger than a so that the magnetic field seen by the particle is similar to that caused by a long wire. Neglect end effects and assume that speed of the particle is high so that it crosses the wire quickly and suffers a small deflection θ in its path. Calculate θ.

Detailed Solution for JEE Main Mock Test - 1 - Question 19




Force on the particle is 
This force is always perpendicular to the velocity. Since deflection is small, the force is nearly in (↑) direction always.
Impulse is: 

JEE Main Mock Test - 1 - Question 20

A water barrel having water up to depth 'd' is placed on a table of height 'h'. A small hole is made on the wall of the barrel at its bottom. If the stream of water coming out of the hole falls on the ground at a horizontal distance 'R' from the barrel, then the value of 'd' is:

Detailed Solution for JEE Main Mock Test - 1 - Question 20


By Bernoulli's equation: mgd = 1/2 mv2
v = √2gd ........... (1)
By Projectile motion equation: 1/2 gt2 = h

Therefore, 
So, d = R2/4h

*Answer can only contain numeric values
JEE Main Mock Test - 1 - Question 21

A physical quantity Q is given by

The percentage error in A,B, C, D are 1%, 2%, 4%, 2% respectively. Find the percentage error in Q.


Detailed Solution for JEE Main Mock Test - 1 - Question 21

= 22 or 22 %

*Answer can only contain numeric values
JEE Main Mock Test - 1 - Question 22

In the HCl molecule, the separation between the nuclei of the two atoms is about 1.27 Å (1 Å = 10–10 m). Find the approximate location of the CM of the molecule, given that a chlorine atom is about 35.5 times as massive as a hydrogen atom and nearly all the mass of an atom is concentrated in its nucleus.


Detailed Solution for JEE Main Mock Test - 1 - Question 22

Mass of H atom = m
Mass of Cl atom = 35.5m
Let the centre of mass of the system lie at a distance x from the Cl atom.
Distance of the centre of mass from the H atom = (1.27 – x)

Let us assume that the centre of mass of the given molecule lies at the origin. Therefore, we can have:
[ m(1.27 – x) + 35.5mx ] / (m + 35.5m)  =  0
m(1.27 – x) + 35.5mx =  0
1.27 - x = -35.5x
∴ x = -1.27 / (35.5 - 1)  =  -0.037 Å
Here, the negative sign indicates that the centre of mass lies at the left of the molecule. Hence, the centre of mass of the HCl molecule lies 0.037Å from the Cl atom.

*Answer can only contain numeric values
JEE Main Mock Test - 1 - Question 23

A bullet is fired from a gun at a speed of 5000 m/s. At what height should the gun be aimed above a goal if it has to strike the goal at a distance of 500 m? Take g=10m/s2


Detailed Solution for JEE Main Mock Test - 1 - Question 23

Let t be the time taken to cover the horizontal distance of 500 m from the gun to the target ,then
t = 500 / 5000 = .1 s
During this time,bullet will fall down vertically due to acceleration due to gravity.
Vertical distance covered
h = 1/2gt2 = .005 m
= 5cm.
Hence the gun should be aimed at 5cm above the target

*Answer can only contain numeric values
JEE Main Mock Test - 1 - Question 24

The amplitude of the magnetic field part of a harmonic electromagnetic wave in vacuum is B0 = 510nT. What is the amplitude of the electric field part of the wave?


Detailed Solution for JEE Main Mock Test - 1 - Question 24

The amplitude of the magnetic field of an electromagnetic wave in a vacuum, B0 = 510nT = 510 x 10-9 T

Speed of light in a vacuum, c = 3 x 108 m/s

The relation between the amplitude of the electric field and the magnetic field is c = E0/B0

E = cBo = 3 x 108 x 510 x 10-9 = 153 N/C

JEE Main Mock Test - 1 - Question 25

Electromagnetic radiations having λ = 310 Å are subjected to a metal sheet having work function = 12.8 eV. What will be the velocity of photoelectrons with maximum Kinetic energy.

Detailed Solution for JEE Main Mock Test - 1 - Question 25



V2 = 9.56 × 1012
V = 3.09 × 106 m/sec.

JEE Main Mock Test - 1 - Question 26

Consider the ground state of Cr atom (X = 24). The number of electrons with the azimuthal quantum numbers, ℓ = 1 and 2 are, respectively [2004]

Detailed Solution for JEE Main Mock Test - 1 - Question 26

Electronic configuration of Cr atom (z = 24) = 1s2, 2s2 2p6, 3s2 3p6 3d5, 4s1
when ℓ = 1, p - subshell,
Numbers of electrons = 12
when ℓ = 2, d - subshell,
Numbers of electrons = 5

JEE Main Mock Test - 1 - Question 27

Which of the following angle corresponds to sp2 hybridisation?

Detailed Solution for JEE Main Mock Test - 1 - Question 27

sp2 hybridisation gives three sp2 hybrid orbitals which are planar triangular forming an angle of 120° with each other.
The electronic configurations of three elements A, B and C are given below.
Answer the questions from 14 to 17 on the basis of these configurations.
A ls22s22p6
B ls22s22p63s23p3
C ls22s22p63s23p

JEE Main Mock Test - 1 - Question 28

Azide ion [N3-] exhibits an (N−N) bond order of 2 and may be represented by the resonance structures I,II and III given below:

The most stable resonance structure is

Detailed Solution for JEE Main Mock Test - 1 - Question 28

JEE Main Mock Test - 1 - Question 29

C—Cl bond in (vinyl chloride) is stabilised in the same way as in 

Detailed Solution for JEE Main Mock Test - 1 - Question 29


Due to delocalisation of π-electrons, (C—Cl) bond is stable and it does not show SN reactions; Cl directly attached (C=C) bond, i.e. vinyl group.

JEE Main Mock Test - 1 - Question 30

The following equations are balanced atomwise and chargewise.

(i) Cr2O72- + 8H+ + 2H2O2 → 2Cr3+ + 7H2O + 2O2

(ii) Cr2O72- + 8H+ + 5H2O2→ 2Cr3+ + 9H2O + 4O2

(iii) Cr2O72- + 8H+ + 7H2O2→ 2Cr+ + 11H2O + 5O2

The precise  equations representing the oxidation of H2O2 is/are

Detailed Solution for JEE Main Mock Test - 1 - Question 30

The correct answer is option A
Cr2O72- converts into Cr3+ in acidic medium I.e. in H+ medium.
First balance the Cr atom on both sides and then Oxygen atom. H+ is in excess due to acidic medium.
Add H+ as +ve charge to balance the charge on both sides.

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