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Class 11 Chemistry Unit 6: Thermodynamics Lecture 1 of 8 CBSE • NEET • JEE

Class 11 Chemistry Thermodynamics Lecture 1: Introduction, System & Surroundings Notes

Target Exams: CBSE Class 11, NEET UG, JEE FoundationStudy Time: 15 MinsIncludes: Handwritten PDF Notes, System Diagrams, Comparison Tables

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Download the clean, high-yield classroom handwritten notes for this lecture in printable PDF format.

⬇ Download Lecture 1 Handwritten PDF Notes

Topics Covered in Lecture 1

  • Scope and Definition: Classical thermodynamics vs. kinetic theory, macroscopic nature of thermodynamic properties.
  • Fundamental Terms: Detailed definition of System, Surroundings, Boundary, and the Universe.
  • Types of Boundaries: Real vs. Imaginary, Rigid vs. Flexible, Diathermic (conducting) vs. Adiabatic (insulating).
  • Three System Types: Open, Closed, and Isolated systems with real-world and laboratory examples.
  • Macroscopic Properties: Extensive vs. Intensive properties and rules for property ratios.
  • Thermodynamic Equilibrium: Thermal, Mechanical, and Chemical equilibrium conditions for defining the state of a system.

What You Will Learn

1. Clear Boundary Analysis

Learn how to isolate any chemical reaction vessel from its surroundings by identifying real/imaginary and diathermic/adiabatic interfaces.

2. Rapid System Identification

Master the exact criteria (Matter Exchange & Energy Exchange) to classify open, closed, and isolated systems in NEET & JEE questions.

3. Property Sorting Rule

Understand why specific/molar quantities and ratios of extensive properties (e.g. Mass/Volume = Density) are always intensive.

4. Equilibrium Conditions

Recognize why a thermodynamic state is only valid when temperature, pressure, and composition are all completely constant.

Important Thermodynamics Concepts

1. System, Surroundings, Boundary & Universe

In physical chemistry, Thermodynamics deals with the energy transformations, heat flow, and work associated with macroscopic chemical and physical processes.

Key Formula & Concept Definition:

UNIVERSE = SYSTEM + SURROUNDINGS

  • System: The specific part of the universe chosen for thermodynamic investigation, where energy and mass changes are observed (e.g., reactants in a conical flask).
  • Surroundings: Everything in the universe remaining outside the chosen system that can interact with it by exchanging matter or energy (e.g., the laboratory air, water bath, container exterior).
  • Boundary: The real or imaginary, rigid or flexible, diathermic or adiabatic surface that separates the system from its surroundings.
  • Universe: The totality comprising the system and its entire surroundings.

SCHEMATIC: THE THERMODYNAMIC UNIVERSE

SURROUNDINGS (The Entire Environment)
← BOUNDARY (Real or Imaginary Wall) →
SYSTEM
(Reactants, Gas, or Solution under study)
Energy & Mass transfer takes place across the Boundary

2. Classification of Systems (Open, Closed, Isolated)

Thermodynamic systems are classified based on the permeability of their boundaries to matter and energy.

System Type Matter Exchange (Δm) Energy Exchange (ΔE) Real-World & Lab Examples
OPEN SYSTEM ✓ YES ✓ YES Boiling water in an open beaker; all living biological organisms; burning candle.
CLOSED SYSTEM ✗ NO ✓ YES Water in a sealed metallic flask; closed piston-cylinder assembly with conductive walls.
ISOLATED SYSTEM ✗ NO ✗ NO Hot tea in an ideal vacuum insulated thermos flask; the entire Physical Universe.

3. Macroscopic Properties: Intensive vs. Extensive

Properties of matter in bulk (macroscopic system) are divided into two fundamental categories:

Property Classification Definition Key Examples Important Examination Rules
Extensive Properties Properties that depend on the total quantity of matter or size of the system. Mass (m), Volume (V), Internal Energy (U), Enthalpy (H), Entropy (S), Gibbs Free Energy (G), Heat Capacity (C), Number of moles (n). Extensive properties are additive in nature. If a system of mass $m_1$ is merged with $m_2$, the total mass is $m_1 + m_2$.
Intensive Properties Properties that are independent of the total quantity of matter or size of the system. Temperature (T), Pressure (P), Density (ρ), Refractive Index (μ), Viscosity (η), Boiling Point, Specific Heat Capacity (c), Molar Heat Capacity (Cm), Molarity (M), EMF. Intensive properties are non-additive. When dividing a sample of water at 25°C into two equal halves, both halves remain at 25°C.

💡 Golden Rule for NEET & JEE Foundation:

The ratio of any two extensive properties is always an intensive property.
• $ ext{Density} = rac{ ext{Mass (Extensive)}}{ ext{Volume (Extensive)}} ightarrow ext{Intensive}$
• $ ext{Molar Volume} = rac{V ext{ (Extensive)}}{n ext{ (Extensive)}} ightarrow ext{Intensive}$
• $ ext{Specific Heat} = rac{ ext{Heat Capacity } C ext{ (Extensive)}}{ ext{Mass } m ext{ (Extensive)}} ightarrow ext{Intensive}$

4. State of a System & Thermodynamic Equilibrium

The state of a thermodynamic system is described by its macroscopic state variables: Pressure (P), Volume (V), Temperature (T), and Composition / Moles (n). A state is only well-defined when the system is in complete Thermodynamic Equilibrium.

  • Thermal Equilibrium: The temperature is uniform throughout all parts of the system and equal to the surroundings ($T_{ ext{sys}} = T_{ ext{surr}}$), with zero net heat transfer.
  • Mechanical Equilibrium: There are no unbalanced macroscopic forces or pressure gradients within the system or between the system and surroundings ($P_{ ext{sys}} = P_{ ext{surr}}$).
  • Chemical Equilibrium: No spontaneous chemical reactions or diffusion of matter occurs between different phases, keeping the chemical composition completely constant over time.

Download Handwritten Notes

📥 Download Lecture 1 Handwritten PDF Notes

High-yield study notes with labeled diagrams, intensive/extensive classification chart, and NCERT revision points.

File: Class_11_Chemistry_Thermodynamics_Lecture_1_Handwritten_Notes.pdf • Size: 2.4 MB • Format: Printable Static PDF

Exam Preparation: CBSE, NEET & JEE Foundation

Q1. Why is heat capacity an extensive property, while specific heat capacity is intensive? (CBSE Class 11 Board)

Answer: Heat capacity ($C = q/Delta T$) depends on the total mass of the substance—heating 10 kg of water requires 10 times more heat than 1 kg of water for the same 1 K temperature rise. In contrast, specific heat capacity ($c = C/m$) is defined per unit mass (1 g or 1 kg), making it independent of total sample size.

Q2. Is an ordinary cup of hot coffee a closed system? (NEET Concept Check)

Answer: No. An ordinary open cup of hot coffee is an open system because water vapor (matter) escapes into the atmosphere and heat (energy) is lost through convection and radiation. It becomes a closed system only when sealed with a rigid, heat-conducting lid.

Q3. Which of the following is an extensive property: Density, Pressure, Enthalpy, Temperature? (JEE Foundation MCQ)

Answer: Enthalpy (H). Enthalpy is the total heat content of a system ($H = U + PV$) and scales directly with the number of moles present. Density, Pressure, and Temperature are intensive properties.

Next Lecture in Thermodynamics Series

Continue to Lecture 2:

Lecture 2: State Functions, Path Functions, Reversible & Irreversible Processes, and First Law of Thermodynamics. Learn the mathematical difference between $q, w$ (path dependent) and $Delta U, Delta H$ (exact differentials).

Proceed to Lecture 2 Notes →
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