CBSE Class 11 Biology Chapter 13: Photosynthesis in Higher Plants NCERT Solutions
This resource provides detailed NCERT Solutions for Class 11 Biology, Chapter 13, focusing on Photosynthesis in Higher Plants. It covers essential topics such as the role of chlorophyll, the function of different pigments, the Photosynthetically Active Radiation (PAR) range, the effectiveness of different light wavelengths in photosynthesis, and the energy sources for chemosynthetic bacteria and ATP synthesis in Photosystem II. The solutions also explain the products formed during the light-dependent reactions of photosynthesis. These explanations are designed to clarify complex processes, helping students grasp the fundamental mechanisms of how plants convert light energy into chemical energy. This chapter is crucial for understanding plant physiology and its role in ecosystems. The solutions are structured to aid students in their exam preparation, offering clear explanations and reinforcing key concepts for better retention and application.
Quick info
| Board | CBSE |
|---|---|
| Class | Class 11 |
| Subject | Biology Exemplar |
| Session | 2026 |
| Language | English |
| Type | NCERT Solutions |
| Chapter | Chapter 13 |
Chapter summary
Chapter 13 of the CBSE Class 11 Biology syllabus, 'Photosynthesis in Higher Plants,' is explained through these NCERT Solutions. The solutions cover the essential components and processes of photosynthesis, including chlorophyll's role, accessory pigments, the PAR spectrum, light effectiveness, energy sources for chemosynthesis and photophosphorylation, and the outcomes of light reactions. This chapter is vital for understanding plant life and energy flow in ecosystems. The provided solutions aim to simplify these concepts for effective learning and revision.
Learning outcomes
- Identify the metal ion present in chlorophyll.
- Distinguish between primary photosynthetic pigments and accessory pigments.
- Define and identify the range of Photosynthetically Active Radiation (PAR).
- Explain the effectiveness of different wavelengths of light in photosynthesis.
- Describe the energy source for chemosynthetic bacteria.
- Explain the origin of energy for ATP synthesis in Photosystem II.
- List the products formed during the light-dependent reactions of photosynthesis.
Topics covered
Paper topics
- Chlorophyll structure and function
- Accessory pigments in photosynthesis
- Photosynthetically Active Radiation (PAR)
- Effectiveness of different light wavelengths
- Chemosynthesis
- Energy sources for ATP synthesis
- Photosystem II (PS II)
- Light-dependent reactions
- Products of light reactions
- Role of metal ions in photosynthesis
Important topics
- Role of Chlorophyll and Accessory Pigments
- Photosynthetically Active Radiation (PAR)
- Light Effectiveness and Spectrum
- Light-Dependent Reactions and Products
- ATP Synthesis Mechanism
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Questions and Solutions
Multiple Choice Questions (MCQs) - Question 1
- Iron (b) Copper (c) Magnesium (d) Zinc
Multiple Choice Questions (MCQs) - Question 2
- Chlorophyll-a (b) Chlorophyll-b
- Xanthophyll (d) Carotenoid
Multiple Choice Questions (MCQs) - Question 3
- 100-390 (b) 390-430 (c) 400-700 (d) 760-100,00
Multiple Choice Questions (MCQs) - Question 4
- Blue (b) Green (c) Red (d) Violet
Multiple Choice Questions (MCQs) - Question 5
- sun (b) infrared rays
- organic substances (d) inorganic chemicals
Multiple Choice Questions (MCQs) - Question 6
- proton gradient (b) electron gradient
- reduction of glucose (d) oxidation of glucose
Multiple Choice Questions (MCQs) - Question 7
- ATP and sugar (b) hydrogen, O<sub>2</sub> and sugar
- ATP, hydrogen donor and O<sub>2</sub> (d) ATP, hydrogen and O<sub>2</sub> donor
Common mistakes
- Confusing the central metal ion of chlorophyll with other essential plant micronutrients.
- Misidentifying the primary pigment responsible for converting light energy.
- Incorrectly recalling the specific wavelength range for PAR.
- Not understanding why green light is least effective for photosynthesis.
- Confusing the energy source for chemosynthetic bacteria with photosynthetic organisms.
Revision tips
- Focus on memorizing the specific metal ion in chlorophyll and its function.
- Clearly differentiate between chlorophyll-a and accessory pigments.
- Understand the significance of the 400-700 nm range for PAR.
- Review the reasons behind the varying effectiveness of different light colors.
- Pay attention to the distinct energy sources used by chemosynthetic versus photosynthetic organisms.
Practice MCQs
Q1. Which metal ion is a crucial component of the chlorophyll molecule?
Explanation: Magnesium (Mg) is located at the center of the porphyrin ring in chlorophyll, making it essential for its structure and function. Iron, copper, and zinc play roles in other metabolic processes.
Q2. Which pigment directly converts light energy into chemical energy during photosynthesis?
Explanation: Chlorophyll-a is the primary pigment that directly captures light energy and initiates the process of converting it into chemical energy. Chlorophyll-b, xanthophyll, and carotenoids act as accessory pigments.
Q3. What is the wavelength range, in nanometers (nm), defined as Photosynthetically Active Radiation (PAR)?
Explanation: Photosynthetically Active Radiation (PAR) encompasses the visible light spectrum, specifically ranging from 400 nm to 700 nm, which is utilized by plants for photosynthesis.
Q4. Which color of light is most effective for driving the process of photosynthesis?
Explanation: Red light, within the visible spectrum, is the most effective wavelength for photosynthesis. While blue and violet light are also used, green light is least effective as it is largely reflected by plants.
Q5. Chemosynthetic bacteria derive their energy from:
Explanation: Chemosynthetic bacteria obtain energy by oxidizing inorganic chemicals, such as H₂S or NO₂, to synthesize their own food. They do not rely on sunlight or organic substances for energy.
Q6. The energy required for ATP synthesis in Photosystem II (PS II) originates from:
Explanation: ATP synthesis in PS II is driven by a proton gradient that forms across the thylakoid membrane. This gradient is established as protons accumulate in the thylakoid lumen, and their flow back into the stroma powers ATP synthase.
Q7. What are the primary products generated during the light-dependent reactions of photosynthesis?
Explanation: The light-dependent reactions produce ATP (energy currency), NADPH (a hydrogen donor), and release O₂ as a byproduct from the splitting of water. Sugar is synthesized during the light-independent (Calvin cycle) reactions.
Frequently asked questions
What is the main function of chlorophyll in photosynthesis?
Chlorophyll is the primary pigment that absorbs light energy from the sun, initiating the process of converting light energy into chemical energy.
What is PAR and why is it important?
PAR stands for Photosynthetically Active Radiation, which is the range of light wavelengths (400-700 nm) that plants use for photosynthesis. It's crucial because it defines the usable light spectrum for plant energy production.
Why is red light considered the most effective for photosynthesis?
Red light is most effectively absorbed by chlorophyll and drives photosynthesis at a higher rate compared to other wavelengths in the visible spectrum. Green light is least effective as it is mostly reflected.
What is the difference between photosynthetic and chemosynthetic bacteria?
Photosynthetic bacteria use light energy to produce food, similar to plants. Chemosynthetic bacteria, however, obtain energy from the oxidation of inorganic chemicals to synthesize their food.
What are the key outputs of the light-dependent reactions in photosynthesis?
The light-dependent reactions produce ATP (energy), NADPH (a reducing agent or hydrogen donor), and oxygen (O₂) as a byproduct.
Which metal ion is essential for the structure of chlorophyll?
Magnesium (Mg) is the central metal ion in the porphyrin ring of chlorophyll, making it indispensable for the pigment's function.
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