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Previous year question hub

Atoms And Nuclei - Modern Physics - Physics Previous Year Questions

Practice Atoms And Nuclei - Modern Physics - Physics previous year questions organised from real papers, with year-wise coverage and clear topic navigation.

5Papers
5Years
5Questions
1Topics

Atoms And Nuclei question pattern

Every graph below is calculated only from this selection.

Questions by year

Year-wise coverage for Atoms And Nuclei. Each bar uses a separate theme-derived color.

Difficulty distribution

How the classified questions are distributed by difficulty.

Not classified 5 100%

Question type distribution

MCQ, numerical, multiple-select and other formats found in these papers.

Multiple Choices 5 100%

Subject weightage

Top subjects by unique question coverage.

Physics
5 Qs

Most asked topics

Top topics across the included previous year papers.

Modern Physics
5 Qs

Subtopic coverage

Top subtopics inside this exact selection.

Atoms And Nuclei
5 Qs

Paper coverage

Question coverage for the most populated papers. Every active PYP paper remains listed below.

IAT IISER 2025
1 Qs
IAT IISER 2024
1 Qs
IAT IISER 2023
1 Qs
IAT IISER 2022
1 Qs
IAT IISER 2020
1 Qs

Included previous year papers

Newest papers appear first. Sort by year, question coverage or name.

PaperYear / sessionQuestions in this viewOpen
IAT IISER 202520251View paper
IAT IISER 202420241View paper
IAT IISER 202320231View paper
IAT IISER 202220221View paper
IAT IISER 202020201View paper

All Atoms And Nuclei previous year questions

Practice every matching question in batches of 20, with every available option.

1
2020 · Physics · Modern Physics · Atoms And Nuclei
IAT IISER 2020

An electron of mass $m_e$ has a speed $u_n$ in the $n^{\text {th }}$ Bohr orbit of a hydrogen atom. The normalized speed $V_n$ is given as $V_n=u_n / c=1 / 685$ and the mass of the electron in the units of energy is given as $M_e=m_e c^2=0.51 \times 10^6 \mathrm{eV}$, where $c$ is the velocity of light in a vacuum. It is given that $\frac{e^2}{2 \epsilon_0 h c}=1 / 137$. The Planck's constant h is given as $4.13 \times 10^{-15} \mathrm{eV}-\mathrm{sec}$. The electron makes a transition from $n^{\text {th }}$ orbit to the ground state of the atom. What is the frequency of the emitted photon?

A
$3.29 \times 10^{15} \mathrm{~Hz}$
B
$2.47 \times 10^{15} \mathrm{~Hz}$
C
$2.93 \times 10^{15} \mathrm{~Hz}$
D
$3.16 \times 10^{15} \mathrm{~Hz}$
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2
2022 · Physics · Modern Physics · Atoms And Nuclei
IAT IISER 2022
Consider that in a fission of a single Plutonium ( $\mathrm{Pu}^{239}$ ) atom 207 MeV energy is released. Assuming all atoms of Plutonium undergo fission, which of the following options is the closest estimate of the amount of Plutonium required for a 20,000 units of TNT explosion? (1 unit of TNT $=4.184 \times 10^9 \mathrm{~J}, 1 \mathrm{eV}=1.6 \times 10^{-19} \mathrm{~J}$ )
A
60.0 g
B
0.5 kg
C
1 kg
D
10 kg
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3
2023 · Physics · Modern Physics · Atoms And Nuclei
IAT IISER 2023
Consider the Bohr model of an atom where an electron of charge $-e$ revolves around a nucleus of charge $+e$ in an orbit of radius $r$. The electron has an orbital angular momentum $2 h$. If the nucleus had charge $+2 e$, what would have been the radius of the orbit of the electron with the same principal quantum number?
A
$2 r$
B
$r / 2$
C
$r$
D
$\sqrt{2} r$
Open complete paper
4
2024 · Physics · Modern Physics · Atoms And Nuclei
IAT IISER 2024
Atomic masses of two oxygen isotopes ${ }_8^{16} \mathrm{O}$ and ${ }_8^{18} \mathrm{O}$ are 15.99491 u and 17.99916 u , respectively, where $u$ is the atomic mass unit. Masses of protom and neutron are given by 1.00727 u and I .00866 u , respectively. The speed of light is c . What is the difference between the binding energies of ${ }_8^{18} \mathrm{O}{ }_8^{16} \mathrm{O}$ nuclei in units of $u c^2$ ?
A
0.01307
B
2.00425
C
0.99559
D
3.01291
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5
2025 · Physics · Modern Physics · Atoms And Nuclei
IAT IISER 2025

An electron in the ground state (with energy $E_1$ ) of a hydrogen atom, absorbs a photon of energy $E_a$, and gets excited to a higher energy level of principal quantum number $n$. What is the value of $n$ ?

A

\(\sqrt{\frac{E_1}{E_1+E_a}}\)

B

\(\sqrt{\frac{E_1}{E_1-E_a}}\)

C

\(\sqrt{\frac{E_a}{E_1-E_a}}\)

D

\(\sqrt{\frac{E_a}{E_1+E_a}}\)

Open complete paper