Stage 1Orientation0%
Understand the official syllabus, paper structure, marks and preparation resources.
Stage 2Foundation0%
Build the concepts, terminology and prerequisite knowledge needed for the subject.
Stage 3Official Syllabus Coverage0%
Cover every official FPSC topic in a practical sequence.
Stage 4Consolidation0%
Prepare short notes, comparisons, evidence, diagrams, facts, formulas or timelines.
Stage 5Exam Application0%
Apply knowledge through the paper-specific practice format.
Stage 6Past Papers0%
Attempt topic-wise and full-length past-paper practice.
Stage 7Revision and Mock Examination0%
Complete layered revision, weak-area review and a timed mock paper.
Paper 1 · 100 marks
Subject overview
PAPER— I (Marks-100)
Vectors: Dots, Cross and triple products, Gradient, divergence , curl and applications.
Vectors: Dots, Cross and triple products, Gradient, divergence , curl and applications.
Surface tension; Viscosity; Elasticity; fluid motion and Bernoulli’s theorem.
Surface tension; Viscosity; Elasticity; fluid motion and Bernoulli’s theorem.
Free oscillation with one and two degrees of freedom; forced and damped oscillations and phenomenon of resonance ; Simple harmonic motion ; Traveling waves and transmission of energy; Phase and Group vel ocity; standing waves ; Basics of sound waves.
Free oscillation with one and two degrees of freedom; forced and damped oscillations and phenomenon of resonance ; Simple harmonic motion ; Traveling waves and transmission of energy; Phase and Group vel ocity; standing waves ; Basics of sound waves.
Perfect gas, real gas and Van der Waals equation; Three Laws of Thermodynamics; internal energy ; temperature; entropy; Thermal properties of simple systems; kinetic theory of gas es; Maxwellian distribution of molecular velocities; Brownian motion;
Perfect gas, real gas and Van der Waals equation; Three Laws of Thermodynamics; internal energy ; temperature; entropy; Thermal properties of simple systems; kinetic theory of gas es; Maxwellian distribution of molecular velocities; Brownian motion; Transport phenomena. Classical Maxwell-Boltzmann Statistics and its application; Bose-Einstein and Fermi-Dirac Statistics.
Mechanics
Newtonian laws of motion : calculus based approach to kinematics, forces and dynamics, conservation law of energy; conservation of linear and angular momentum; Dynamics of rigid body; spin and precession; gyroscope; Gravitation; planetary motion and
Newtonian laws of motion : calculus based approach to kinematics, forces and dynamics, conservation law of energy; conservation of linear and angular momentum; Dynamics of rigid body; spin and precession; gyroscope; Gravitation; planetary motion and satellites; Kepler's laws; centripetal forces
Reflection, Refraction, Interference, Diffraction and Polarization of waves; interfero meter and Newton’s rings; Diffraction Gratings and their resolving power; spectro meters. Electromagnetic wave equation; no rmal and anamolous dispersion; coherenc
Reflection, Refraction, Interference, Diffraction and Polarization of waves; interfero meter and Newton’s rings; Diffraction Gratings and their resolving power; spectro meters. Electromagnetic wave equation; no rmal and anamolous dispersion; coherence, lasers and applications.
Special theory of relativity : Michelson -Morley experiment and Einstein’s postulates; Lorentz transformation; time dilation and length contraction; equivalence of mass and energy.
Special theory of relativity : Michelson -Morley experiment and Einstein’s postulates; Lorentz transformation; time dilation and length contraction; equivalence of mass and energy.
Fluid Mechanics
Waves and Oscillations, Optics
Heat and Thermodynamics
Paper 2 · 100 marks
Subject overview
PAPER— II (Marks-100)
Electric field due to point charges ; Gauss’ law; Electric potential ; Poisson and Laplace’s equations; Dielectric medium and Polarization; Capacitance; Moving charges and resulting ma gnetic field; Ampere’s law; Magnetic properties of matter; Farada
Electric field due to point charges ; Gauss’ law; Electric potential ; Poisson and Laplace’s equations; Dielectric medium and Polarization; Capacitance; Moving charges and resulting ma gnetic field; Ampere’s law; Magnetic properties of matter; Faraday’s law of electromagnetic induction; Alternating current and RLC circuit; Poynting theorem and Poynting Vector. Maxwell's equations in integral and differential form; scalar and vector potential.
Waves and particles and De Broglie’s Hypothesis; Operators and quantum states; observables; time dependent and independent Schrodinger equation ; angular momentum; spin-1/2 particle in a magnetic field ; wave mechanics ; particle in a box; tunneling;
Waves and particles and De Broglie’s Hypothesis; Operators and quantum states; observables; time dependent and independent Schrodinger equation ; angular momentum; spin-1/2 particle in a magnetic field ; wave mechanics ; particle in a box; tunneling; one-dimensional harmonic oscillator ; Heisenber's uncertainty relationship and indeterminacy based on commutation properties of operators ; Bohr’stheory and quantum numbers including electron spin; Pauli’s exclusion principle; Spectra of simple sys tems with one or two valence electrons ; photo electric effect; Compton scattering; pair production; Lande’s g factor and Zeeman effect. Raman effect;
Crystal lattice and structure, Bravais lattice, free electron mod el, Band theory and electron in a periodic potential, Fermi energy and density of states, n and p type semiconductors, physics of the transistor and MOSFET, dielectric properties, magn
Crystal lattice and structure, Bravais lattice, free electron mod el, Band theory and electron in a periodic potential, Fermi energy and density of states, n and p type semiconductors, physics of the transistor and MOSFET, dielectric properties, magnetic properties and origin of magnetism.
Structure of N uclei; Radioactivity ,, and decay; Methods of detection of nuclear radiation , Mass Sepectrometer ; Accelerators; Phenomenon of fission; reactor and nuclear power; nuclear fusion and its applications; Elementary
Structure of N uclei; Radioactivity ,, and decay; Methods of detection of nuclear radiation , Mass Sepectrometer ; Accelerators; Phenomenon of fission; reactor and nuclear power; nuclear fusion and its applications; Elementary
Electricity and Magnetism
Modern and Quantum Physics
Solid State Physics
Nuclear Physics
- Suggested Readings1 Perspectives of Modern Physics. A. Beiser. 2 Fundamentals of Physics. Halliday & Resnick 3 Introduction to Electromagnetic Fields and Waves. D. Corson & P. Lorrain. 4 Heat and Thermodynamics. D. Zemansky 5 Introduction to Quantum Mechanics D. Griffiths 6 Modern Physics Serway, Moses, Moyer.
- Suggested ReadingsSolid State Physics C. Kittel
My Subjects
Stage 1Orientation0%
Understand the official syllabus, paper structure, marks and preparation resources.
Stage 2Foundation0%
Build the concepts, terminology and prerequisite knowledge needed for the subject.
Stage 3Official Syllabus Coverage0%
Cover every official FPSC topic in a practical sequence.
Stage 4Consolidation0%
Prepare short notes, comparisons, evidence, diagrams, facts, formulas or timelines.
Stage 5Exam Application0%
Apply knowledge through the paper-specific practice format.
Stage 6Past Papers0%
Attempt topic-wise and full-length past-paper practice.
Stage 7Revision and Mock Examination0%
Complete layered revision, weak-area review and a timed mock paper.
Paper 1 · 100 marks
Subject overview
PAPER— I (Marks-100)
Vectors: Dots, Cross and triple products, Gradient, divergence , curl and applications.
Vectors: Dots, Cross and triple products, Gradient, divergence , curl and applications.
Surface tension; Viscosity; Elasticity; fluid motion and Bernoulli’s theorem.
Surface tension; Viscosity; Elasticity; fluid motion and Bernoulli’s theorem.
Free oscillation with one and two degrees of freedom; forced and damped oscillations and phenomenon of resonance ; Simple harmonic motion ; Traveling waves and transmission of energy; Phase and Group vel ocity; standing waves ; Basics of sound waves.
Free oscillation with one and two degrees of freedom; forced and damped oscillations and phenomenon of resonance ; Simple harmonic motion ; Traveling waves and transmission of energy; Phase and Group vel ocity; standing waves ; Basics of sound waves.
Perfect gas, real gas and Van der Waals equation; Three Laws of Thermodynamics; internal energy ; temperature; entropy; Thermal properties of simple systems; kinetic theory of gas es; Maxwellian distribution of molecular velocities; Brownian motion;
Perfect gas, real gas and Van der Waals equation; Three Laws of Thermodynamics; internal energy ; temperature; entropy; Thermal properties of simple systems; kinetic theory of gas es; Maxwellian distribution of molecular velocities; Brownian motion; Transport phenomena. Classical Maxwell-Boltzmann Statistics and its application; Bose-Einstein and Fermi-Dirac Statistics.
Mechanics
Newtonian laws of motion : calculus based approach to kinematics, forces and dynamics, conservation law of energy; conservation of linear and angular momentum; Dynamics of rigid body; spin and precession; gyroscope; Gravitation; planetary motion and
Newtonian laws of motion : calculus based approach to kinematics, forces and dynamics, conservation law of energy; conservation of linear and angular momentum; Dynamics of rigid body; spin and precession; gyroscope; Gravitation; planetary motion and satellites; Kepler's laws; centripetal forces
Reflection, Refraction, Interference, Diffraction and Polarization of waves; interfero meter and Newton’s rings; Diffraction Gratings and their resolving power; spectro meters. Electromagnetic wave equation; no rmal and anamolous dispersion; coherenc
Reflection, Refraction, Interference, Diffraction and Polarization of waves; interfero meter and Newton’s rings; Diffraction Gratings and their resolving power; spectro meters. Electromagnetic wave equation; no rmal and anamolous dispersion; coherence, lasers and applications.
Special theory of relativity : Michelson -Morley experiment and Einstein’s postulates; Lorentz transformation; time dilation and length contraction; equivalence of mass and energy.
Special theory of relativity : Michelson -Morley experiment and Einstein’s postulates; Lorentz transformation; time dilation and length contraction; equivalence of mass and energy.
Fluid Mechanics
Waves and Oscillations, Optics
Heat and Thermodynamics
Paper 2 · 100 marks
Subject overview
PAPER— II (Marks-100)
Electric field due to point charges ; Gauss’ law; Electric potential ; Poisson and Laplace’s equations; Dielectric medium and Polarization; Capacitance; Moving charges and resulting ma gnetic field; Ampere’s law; Magnetic properties of matter; Farada
Electric field due to point charges ; Gauss’ law; Electric potential ; Poisson and Laplace’s equations; Dielectric medium and Polarization; Capacitance; Moving charges and resulting ma gnetic field; Ampere’s law; Magnetic properties of matter; Faraday’s law of electromagnetic induction; Alternating current and RLC circuit; Poynting theorem and Poynting Vector. Maxwell's equations in integral and differential form; scalar and vector potential.
Waves and particles and De Broglie’s Hypothesis; Operators and quantum states; observables; time dependent and independent Schrodinger equation ; angular momentum; spin-1/2 particle in a magnetic field ; wave mechanics ; particle in a box; tunneling;
Waves and particles and De Broglie’s Hypothesis; Operators and quantum states; observables; time dependent and independent Schrodinger equation ; angular momentum; spin-1/2 particle in a magnetic field ; wave mechanics ; particle in a box; tunneling; one-dimensional harmonic oscillator ; Heisenber's uncertainty relationship and indeterminacy based on commutation properties of operators ; Bohr’stheory and quantum numbers including electron spin; Pauli’s exclusion principle; Spectra of simple sys tems with one or two valence electrons ; photo electric effect; Compton scattering; pair production; Lande’s g factor and Zeeman effect. Raman effect;
Crystal lattice and structure, Bravais lattice, free electron mod el, Band theory and electron in a periodic potential, Fermi energy and density of states, n and p type semiconductors, physics of the transistor and MOSFET, dielectric properties, magn
Crystal lattice and structure, Bravais lattice, free electron mod el, Band theory and electron in a periodic potential, Fermi energy and density of states, n and p type semiconductors, physics of the transistor and MOSFET, dielectric properties, magnetic properties and origin of magnetism.
Structure of N uclei; Radioactivity ,, and decay; Methods of detection of nuclear radiation , Mass Sepectrometer ; Accelerators; Phenomenon of fission; reactor and nuclear power; nuclear fusion and its applications; Elementary
Structure of N uclei; Radioactivity ,, and decay; Methods of detection of nuclear radiation , Mass Sepectrometer ; Accelerators; Phenomenon of fission; reactor and nuclear power; nuclear fusion and its applications; Elementary
Electricity and Magnetism
Modern and Quantum Physics
Solid State Physics
Nuclear Physics
- Suggested Readings1 Perspectives of Modern Physics. A. Beiser. 2 Fundamentals of Physics. Halliday & Resnick 3 Introduction to Electromagnetic Fields and Waves. D. Corson & P. Lorrain. 4 Heat and Thermodynamics. D. Zemansky 5 Introduction to Quantum Mechanics D. Griffiths 6 Modern Physics Serway, Moses, Moyer.
- Suggested ReadingsSolid State Physics C. Kittel
