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HPCET M.Sc. Physics Syllabus 2026, Exam Pattern

Complete preparation hub for Hpcet M.sc. Physics 2026 recruitment examination

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📅 Updated On 2026-05-12✨ Update By D. Kumar🌐 Hindi & English
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HPCET M.Sc. Physics Syllabus 2026, Exam Pattern

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HPCET M.Sc. Physics Exam - English100 questions • 120 mins • 100 marks
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HPCET M.Sc. Physics Exam - English100 questions
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Combo - 2 (English)

1. Online Mock Test Series in English = 12 Tests.

2. Question Bank - 1140 Questions with Answer.

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Combo PackageHPCET MSc Physics

HPCET MSc Physics

Combo - 3 (English)

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2. Question Bank - 1140 Questions with Answer.

3. Printed Material 10 Mock Test Papers with OMR Sheet.

4. EBook HPCET MSc Physics (1000 MCQ) PDF Format in English.

5. 1500 (+) Current Affairs MCQ with Answer PDF in English.

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HPCET M.Sc. Physics Syllabus 2026, Exam Pattern

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HPCET M.Sc. Physics Syllabus 2026, Exam Pattern, Exam Date 2026

Detail Information about Himachal Pradesh Common Entrance Test (HPCET) has published notification 2026 for the recruitment of M.Sc. Physics vacancies. Those Candidates who are Interested to the following vacancy and completed all Eligibility Criteria can read the Notification & Apply Online. In this page we provide the Complete Syllabus of this Recruitment with Latest Update Exam Pattern and the Exam Date also.
 
HPCET 2026 - Highlights
 
Exam Name
Himachal Pradesh Common Entrance Test (HPCET)
Exam Conducting Body
Himachal Pradesh Technical University (HPTU)
Occurrence
Once a Year
Application Mode
Online
Exam Frequency
Annual
Medium of Exam
English
Level of the exam
State level
Question type
Objective multiple-choice questions
Mode of Exam
Pen-and-Paper-Based Test
Course offered
BTech/BPharm/BHMCT & BSc/MTech/MPharm/MSc/MBA/BBA/MCA/BCA
Marking scheme
 
For every correct answer, one marks will be awarded
0.25 mark will be deducted for each question answered incorrectly
Official Website
himtu.ac.in
 
HPCET M.Sc. Physics Syllabus 2026
 
Section-A
 
Mathematical methods
 
Infinite sequences and series- convergence and divergence, conditional and absolute convergence, ration test for convergence. Calculus of single and multiple variable, partial derivatives, Jacobian, Imperfect and perfect differentials. Taylor Expansion, Vector algebra, Vector Calculus, Multiple integrals, Divergence theorem, Green’s theorems, Stokes’ theorem, Orthogonal coordinate systems. First order equations and linear second order differential equations with constant coefficients. Linear vector spaces, linear independence, basis. Matrices and determinants, Hermitian adjoint and inverse of a matrix; Hermitian, orthogonal and unitary matrices; Eigenvalue and eigenvectors. Fourier expansion- statement of Dirichlet’s condition, analysis of simple waveforms and Fourier series. Probability distributions and error analysis.
 
Classical mechanics and general properties of matter
 
Newton’s laws of motion and applications, Velocity and acceleration in Cartesian, Polar and cylindrical coordinate systems. Uniformly rotating frame, Centrifugal and Coriolis forces, System of particles. Center of mass, Equation of motion of the CM, Conservation of linear and angular momentum, Conservation of energy, Variable mass systems Motion under a central force, Kepler’s laws Gravitational Law and field, Conservative and nonconservative forces Elastic and inelastic collisions. Differential equation for simple harmonic oscillator and its general solution, Superposition of two or more simple harmonic oscillators, Lissajous figures, Damped and forced oscillators, resonance, Wave equation, travelling and standing waves in one dimension, Energy density and energy transmission in waves, Group velocity and phase velocity, Sound waves in media, Doppler Effect. Rigid body motion, Euler angles, Fixed axis rotations. Moments of Inertia and products of Inertia, Parallel and perpendicular axes theorem, Principal moments and axes. Kinematics of moving fluids, Equation of continuity, Euler’s equation, Bernulli’s theorem.
 
Section-B
 
Optics
 
Fermat’s principle, General theory of image formation, Thick lens, Thin Lens and lens combinations. Huygen’s Principle, Interference of light, Optical path retardation, interferometers. Fraunhofer diffraction, Rayleigh criterion and resolving power, Diffraction gratings. Linear, Circular and elliptic polarization, Double refraction and optical rotation. Lasers, principle and working.
 
Electricity and magnetism
 
Electricity and Magnetism: Coulomb’s law, Gauss’s law, Electric field and potential Electrostatic boundary conditions, Solution of Laplace’s equation for sample cases. Conductors, Capacitors, Dielectrics, Dielectric polarization Volume and surface charges, energy stored in Electromagnetic field Biot-Savart law, Ampere’s law, Faraday’s law of electromagnetic induction, Self and mutual inductance. Alternating currents, Simple DC and AC circuits with R, L and C components. Displacement current, Maxwell’s equations and plane electromagnetic waves, poynting’s theorem. Lorentz Force and motion of charged particles in electric and magnetic fields. Reflection and refraction at a dielectric interface, Transmission and reflection coefficients.
 
Section-C
 
Modern Physics
 
Inertial frames and Galilean invariance, Postulates of special relativity, Lorentz transformations, length contraction, Time dilation, Relativistic velocity addition theorem, Mass energy equivalence. Blackbody radiation, Planck’s law, Rayleigh-Jeans and Wein’s Law, Photoelectric effect, Compton Effect. Bohr’s atomic model, Sommerfeld’s correction, X-rays. Wave-particle duality, Uncertainty principle. Wave function and it’s interpretation, wave packets, Dynamical variables as operators, measurement of observables, expectation values. Commutation relations between operators and compatibility, observables and simultaneous measurements, Ehrefest’s theorem. Schrodinger equation and its solution for one, two and three dimensional boxes, Solution of Schrodinger equation for the one dimensional harmonic oscillator, Reflection and transmission at a step potential.
 
Nuclear and Particle Physics
 
General properties of Nuclei, Nuclear Models: liquid drop model, condition of nuclear stability. Experimental evidence for nuclear magic numbers, elementary accounts of nuclear shell model and its predictions, Radioactivity, qualitative account of the theory of alpha decay and beta decay, Interaction of Nuclear Radiation with matter; Energy loss due to ionization energy loss of electrons, Cerenkov radiation, Rutherford scattering, Multiple coulomb scattering, passage of gamma-rays through matter. Compton scattering, pair production radiation loss by fast electrons, Radiation length and electrongamma showers, position a annihilation, Relativistic Kinematics. Particles Accelerators and Detectors, classification of elementary particles, Types of interactions and its features, Mass spectra and major decays of elementary particle; leptons, mesons, baryons, Weak and electromagnetic Decays of Strange mesons and Hyperons. Classification of weak decays and selection rules.
 
Section-D
 
Atomic and Molecular
 
Spectroscopy Good quantum numbers and selection rules. Stern-Gerlach experiment, Fine structure, Magnetic moment of the electron, Lande g factor, Vector model-Space quantization. Zeeman effect. Explanation from vector atom model. Pauli exclusion principle, shell structure. Hund’s rule, spectroscopic terms of many electron atoms in the ground state, Spectra of alkali and alkaline earth atoms. Rotational and vibrational spectra, Raman effect, Stokes and anti-stokes lines, complimentary character of Raman and Infrared spectra, experimental arrangements for Raman spectroscopy.
 
Kinetic Theory of Gases and Thermodynamics
 
Elements of Kinetic theory of gases. Velocity distribution and Equipartition of energy. Specific hear of Mono, di-and tri-atomic gases. Ideal gas, van-der-Waals gas and equation of state. Mean free path. Laws of thermodynamics. Zeroth law and concept of thermal equilibrium. First law and its consequences. Isothermal and adiabatic processes. Reversible, irreversible and quasi-static processes. Second law and entropy. Carnot cycle. Maxwell’s thermodynamic relations and simple applications. Ideas of ensembles, Maxwell-Baltzmann, Fermi-Dirac and Bose-Einstein distributions.
 
Solid State Physics and Electronics
 
Basics of Crystal Structure: Lattice and basis, primitive and unit cell, Wigner Seitz cell, symmetry operations, lattice types, paeking fraction, Miller indices, simple structures NaCL, diamond. Diffraction Methods: Bragg’s Law, experimental arrangements. Laue equation, reciprocal lattice, atomic scattering factor, geometrical structure factors. Crystal bonding: potential between a pair of atoms, LennardJones potential, Ionic, Covalent, Vander- Wall’s cohesive energy, Lattice Vibration, specific heat Einstein and Debye’s models of specific heat. Free electron theory of metals, Band Theory of Metals: Kronig Penny model, Brillouin zones, electrons in periodic structure, energy bands, energy gaps, effective mass of electrons and holes, metals, insulators, semiconductors, Magnetism, Curie-Weiss law, Langevin theory, basics of superconductivity. Junction Diodes, Transistors their characteristics and simple circuit design: Thevnim’s Theorem, Norton Theorem, Constant Voltage and current generator, idea of equivalent circuits, low frequency equivalent circuits, low frequency equivalent circuits, h-parameters, bias stability, thermal runaway, BIJ, FET’ s and MOSFETS: Structure and working FET amplifier. Oscillators: Tuned Collector, Hartley and Colpitts oscillators, phase shift oscillators. Operational Amplifier, Inverting noninverting amplifier, OP-Amp as adder subtractor, comparator, integrator and differentiator. Modulation and detection, Digital electronic fundamentals, various number systems, Basic logic gates, de-Morgan’s law.
 
HPCET M.Sc. Physics Exam Pattern 2026
 
Duration : 2 Hours
 
For every Correct answer : 1 marks
 
Negative Marking : 0.25 marks
 
Section Subject No.of Question Marks
Section A Mathematics methods, Classical mechanics and general properties of matter 25 25
Section B Optics, Electricity and magnetism 25 25
Section C Modern Physics, Nuclear and Particle Physics 25 25
Section D Atomic and Molecular, Kinetic Theory of gases and Thermodynamics, Solid State Physics and Electronics 25 25
  Total 100 100
 
HPCET Exam Date 2026 : Notified Soon
 
Starting Date of Application Form : Notified Soon
 
Last Date of Application Form : Notified Soon
FAQs

Hpcet M.sc. Physics 2026 Exam Syllabus Frequently Asked Questions (FAQ's)

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In this article Page, we have provided the required syllabus of the HPCET MSc Physics exam.
Being familiar with HPCET MSc Physics Exam Pattern will help you understand the types of questions asked, difficulty level of the exam and important topics that require your keen attention. It will also acquaint you with the marking scheme and time allotted to each Topics.
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HPCET MSc Physics exam is not tough but it depends on your preparation. The candidates find the Subject not challenging. The dedicated preparation in the right direction will undoubtedly take you towards the goal.
The candidates must be well versed and acquainted with the syllabus and the exam pattern. Select the areas where improvement is required and schedule your preparation accordingly. To ace this exam, the applicants ought to maintain speed with high accuracy. Practicing previous years question papers will help you understand the exam pattern and the level of difficulty of the exam. You need to hone your strengths and improve upon your weaknesses. Toppersexam.com will aid you through the preparation and drive you to success. At Toppersexam.com, you can practice a complete set of test series along with a free HPCET MSc Physics mock test designed by our expert faculty.
The syllabus of HPCET MSc Physics Exam includes all topics that are important for the exam and are necessary for thorough preparation. Toppersexam provides a complete and updated syllabus with a detailed topic-wise breakdown.
You can download the complete HPCET MSc Physics Exam syllabus PDF from toppersexam.com. The PDF is available free and includes a detailed list of topics, section-wise subjects, and weightage for better exam preparation.
Yes, HPCET MSc Physics Exam has a topic-wise syllabus that includes all relevant subtopics. Toppersexam provides the detailed breakdown, helping candidates focus on high-weightage areas and avoid missing important sections.
Toppersexam ensures that the HPCET MSc Physics syllabus is updated for 2026. The latest syllabus reflects current exam trends, question patterns, and updated topics as per official notifications.
The HPCET MSc Physics Exam pattern includes details like the number of sections, total questions, marks distribution, and exam duration. Toppersexam provides a comprehensive guide on exam format, marking scheme, and question types.
Yes, the majority of questions in HPCET MSc Physics Exam are MCQs. Toppersexam provides practice MCQs with answers to help candidates understand the question pattern and improve accuracy.
Yes, questions are divided section-wise. Toppersexam provides a clear guide on how many questions are asked per section and their difficulty level for effective preparation.
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Yes, exam patterns can change over time. Toppersexam provides updated information on the latest exam pattern, question types, and section-wise changes.
Understanding the exam pattern is crucial for time management, question prioritization, and strategy planning. Toppersexam guides candidates on how to use the pattern effectively to maximize scores.
Start by dividing the syllabus into sections and prioritizing high-weightage topics. Toppersexam provides a preparation strategy, along with topic-wise tips and sample questions to make syllabus analysis easier.
Yes, focusing on high-weightage topics improves efficiency. Toppersexam highlights important topics, helping candidates prioritize sections for better performance.
Toppersexam provides a free downloadable PDF that includes both the syllabus and detailed exam pattern. This helps candidates study offline and revise efficiently.