Topics
Electrostatics
Electric Charges and Fields
- Electric Charge
- Conductors and Insulators
- Properties of Electric Charge
- Coulomb’s Law
- Forces between Multiple Charges
- Electric Field
- Electric Field Due to a System of Charges
- Physical Significance of Electric Field
- Electric Field Lines
- Electric Flux
- Electric Dipole
- Dipole in a Uniform External Field
- Continuous Charge Distribution
- Gauss’s Law
- Application of Gauss' Law
Current Electricity
Electrostatic Potential and Capacitance
- Electric Potential and Potential Energy
- Electrostatic Potential
- Electric Potential Due to a Point Charge
- Potential Due to an Electric Dipole
- Potential due to a System of Charges
- Equipotential Surfaces
- Relation Between Electric Field and Electrostatic Potential
- Potential Energy of a System of Charges
- Potential Energy of a Single Charge
- Potential Energy of a System of Two Charges in an External Field
- Potential Energy of a Dipole in an External Field
- Electrostatics of Conductors
- Dielectrics and Polarisation
- Capacitors and Capacitance
- The Parallel Plate Capacitor
- Effect of Dielectric on Capacitance
- Combination of Capacitors
- Energy Stored in a Charged Capacitor
Magnetic Effects of Current and Magnetism
Current Electricity
- Electric Current
- Electric Currents in Conductors
- Ohm's Law
- Drift of Electrons and the Origin of Resistivity
- Mobility of Electrons
- Limitations of Ohm’s Law
- Resistivity of Various Materials
- Temperature Dependence of Resistivity
- Electrical Energy and Power in Conductors
- Cells, EMF, and Internal Resistance
- Cells in Series and in Parallel
- Kirchhoff’s Laws
- Wheatstone Bridge
Moving Charges and Magnetism
- Electromagnetism
- Magnetic force
- Motion in a Magnetic Field
- Magnetic Field Due to a Current-carrying Conductor: Biot-savart's Law
- Applications of Biot-Savart's Law > Magnetic Field at the Axis of a Circular Current-carrying Loop
- Ampere’s Circuital Law
- Solenoid
- Force Between Two Parallel Currents (Ampere’s Law)
- Torque on a Rectangular Current Loop in a Uniform Magnetic Field
- Circular Current Loop as a Magnetic Dipole
- Moving Coil Galvanometer
- Kirchhoff’s Laws
Electromagnetic Induction and Alternating Currents
Magnetism and Matter
Electromagnetic Waves
Optics
Electromagnetic Induction
Alternating Current
Dual Nature of Radiation and Matter
Electromagnetic Waves
Atoms and Nuclei
Ray Optics and Optical Instruments
- Ray Optics Or Geometrical Optics
- Reflection of Light by Spherical Mirrors
- Sign Convention for Reflection by Spherical Mirrors
- Focal Length of Spherical Mirrors
- Mirror Equation of Spherical Mirrors
- Refraction of Light
- Total Internal Reflection
- Applications of Total Internal Reflection
- Refraction at a Spherical Surfaces
- Refraction by a Lens
- Power of a Lens
- Combined Focal Length of Two Thin Lenses in Contact
- Refraction Through a Prism
- Introduction to Optical Instruments
- Microscope and it’s types
- Telescope
Electronic Devices
Wave Optics
- Introduction to Wave Optics
- Huygens Principle
- Refraction of a Plane Wave
- Refraction at a Rarer Medium
- Reflection of a Plane Wave by a Plane Surface
- Coherent and Incoherent Addition of Waves
- Interference of Light Waves and Young’s Experiment
- Diffraction of Light
- The Single Slit
- Seeing the Single Slit Diffraction Pattern
- Polarisation of Light
Communication Systems
Dual Nature of Radiation and Matter
- Understanding Dual Nature of Radiation and Matter
- Electron Emission
- Photoelectric Effect - Hertz’s Observations
- Photoelectric Effect - Hallwachs’ and Lenard’s Observations
- Experimental Study of Photoelectric Effect
- Effects of Intensity and Frequency on Photocurrent
- Photoelectric Effect and Wave Theory of Light
- Einstein’s Photoelectric Equation: Energy Quantum of Radiation
- Particle Nature of Light: The Photon
- Wave Nature of Matter
The Special Theory of Relativity
Atoms
Nuclei
Semiconductor Electronics - Materials, Devices and Simple Circuits
Communication Systems
- Detection of Amplitude Modulated Wave
- Production of Amplitude Modulated Wave
- Basic Terminology Used in Electronic Communication Systems
- Sinusoidal Waves
- Modulation and Its Necessity
- Amplitude Modulation (AM)
- Need for Modulation and Demodulation
- Satellite Communication
- Propagation of EM Waves
- Bandwidth of Transmission Medium
- Bandwidth of Signals
The Special Theory of Relativity
- The Special Theory of Relativity
- The Principle of Relativity
- Maxwell'S Laws
- Kinematical Consequences
- Dynamics at Large Velocity
- Energy and Momentum
- The Ultimate Speed
- Twin Paradox
Estimated time: 16 minutes
CBSE: Class 12
Maharashtra State Board: Class 11
Maharashtra State Board: Class 11
Definition: Donor Impurity
Since every pentavalent dopant atom donates one electron for conduction, it is called a donor impurity.
CBSE: Class 12
Maharashtra State Board: Class 11
Maharashtra State Board: Class 11
N-type Semiconductor
When a silicon or germanium crystal is doped with a pentavalent impurity such as phosphorus, arsenic, or antimony, an n-type semiconductor is obtained.

- A dopant atom with 5 valence electrons occupies the position of a silicon atom in the crystal lattice.
- Four electrons from the dopant form bonds with four neighbouring silicon atoms.
- The fifth electron remains very weakly bound to its parent atom.
- Very little energy is needed to free this electron even at room temperature.
- The required energy is 0.01 eV for germanium and 0.05 eV for silicon.
CBSE: Class 12
Maharashtra State Board: Class 11
Maharashtra State Board: Class 11
Origin of the Name N-Type
- In this semiconductor, a large number of electrons are present in the conduction band.
- Its conductivity is due to negatively charged carriers.
- Therefore, it is called an n-type semiconductor.
CBSE: Class 12
Maharashtra State Board: Class 11
Maharashtra State Board: Class 11
Charge Carriers
- The n-type semiconductor also has a few electrons and holes produced due to thermally broken bonds.
- The density of conduction electrons, ne, in a doped semiconductor is the total of electrons contributed by donors and thermally generated electrons from the host.
- The density of holes, nhnh, is only due to the thermal breakdown of some covalent bonds of the host silicon atoms.
- Some electrons and holes recombine continuously because they carry opposite charges.
- The number of free electrons exceeds the number of holes.
- Thus, electrons are the majority carriers, and holes are the minority carriers.
- Relation: ne >> nh
CBSE: Class 12
Maharashtra State Board: Class 11
Maharashtra State Board: Class 11
Energy Band
- The free electrons donated by impurity atoms occupy energy levels in the band gap.
- These levels are close to the conduction band.
- Therefore, these electrons are easily available for conduction.
CBSE: Class 12
Maharashtra State Board: Class 11
Maharashtra State Board: Class 11
Conductivity of Extrinsic Semiconductors

- Extrinsic semiconductors are better conductors than intrinsic semiconductors.
- The conductivity of an extrinsic semiconductor can be controlled by controlling the amount of impurities added.
- The amount of impurities is expressed as parts per million (ppm), that is, one impurity atom per one million atoms of the host.
CBSE: Class 12
Maharashtra State Board: Class 11
Maharashtra State Board: Class 11
Conductivity of Extrinsic Semiconductors
- These are materials doped with pentavalent impurity (donor) atoms.
- Electrical conduction in these materials is due to electrons as the majority charge carriers.
- The donor atom loses electrons and becomes a positively charged ion.
- The number of free electrons is very large compared to the number of holes.
- When energy is supplied externally, negatively charged free electrons (majority charge carriers) and positively charged holes (minority charge carriers) are available for conduction.
CBSE: Class 12
Maharashtra State Board: Class 11
Maharashtra State Board: Class 11
Effect of Doping on Electrical Conductivity
- One cm3 specimen of a metal or semiconductor has of the order of 1022 atoms.
- In a metal, every atom donates at least one free electron for conduction, so 1 cm3 of metal contains of the order of 1022 free electrons.
- 1 cm³ of pure germanium at 20°C contains about 4.2 × 1022 atoms, but only 2.5 × 1013 free electrons and 2.5 × 1013 holes.
- Addition of 0.001% of arsenic donates 1017 extra free electrons in the same volume.
- The electrical conductivity increases by a factor of 10,000.
Maharashtra State Board: Class 11
Example
Question: A pure silicon crystal has 4 × 1028 atoms m−3. It is doped with a 1 ppm concentration of antimony. Calculate the number of electrons and holes. Given ni = 1.2 × 1016 m−3.
Given
- Number of silicon atoms = 4 × 1028 m−3
- Doping concentration = 1 ppm = \[\frac {1}{10^6}\]
- ni = 1.2 × 1016 m−3
Calculation
Number of Sb atoms: \[\frac{4\times10^{28}}{10^6}=4\times10^{22}\]
As one pentavalent impurity atom donates one free electron:
ne = 4 × 1022 m−3
Number of holes: nh = \[\frac {n_i^2}{n_e}\]
\[n_h=\frac{(1.2\times10^{16})^2}{4\times10^{22}}=3.6\times10^9m^{-3}\]
Answer
- Number of free electrons: 4 × 1022 m−3
- Number of holes: 3.6 × 109 m−3
CBSE: Class 12
Maharashtra State Board: Class 11
Maharashtra State Board: Class 11
Key Points: n-type Semiconductor
- An n-type semiconductor is formed by doping silicon or germanium with a pentavalent impurity.
- Pentavalent impurities act as donor impurities.
- The fifth valence electron is weakly bound and can become free easily.
- Electrons are majority carriers and holes are minority carriers.
- For an n-type semiconductor, ne >> nh.
- Donor energy levels lie close to the conduction band.
- Extrinsic semiconductors are better conductors than intrinsic semiconductors.
Test Yourself
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Related concepts
- Extrinsic Semiconductor - Charge neutrality of extrinsic semiconductors
