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Q1: Why do leaves change color in autumn?
Leaves change color because chlorophyll, the dominant green pigment, degrades faster than other pigments like carotenoids in autumn. As chlorophyll breaks down, the yellow and red wavelengths reflected by carotenoids become visible. In summer, chlorophyll absorbs high-energy blue and red wavelengths while reflecting green light, masking these other pigments.
Q2: What role does chlorophyll play in photosynthesis?
Chlorophyll absorbs light energy and uses it to excite electrons, which are then passed through an electron transport chain to generate energy-rich molecules like ATP and NADPH. When chlorophyll loses electrons during this process, they must be replaced by electrons from water splitting. This continuous electron cycling allows chlorophyll to repeatedly capture light energy for photosynthesis.
Q3: How does chromatography separate leaf pigments?
Chromatography paper is a hydrophilic polymer that separates pigments based on their solubility in an organic solvent. When leaf extract is loaded onto the paper and dipped in solvent, capillary action carries the solvent upward. Hydrophobic pigments travel farther, while hydrophilic pigments bind to cellulose and move slower, allowing identification by calculating retention factor (Rf) values.
Q4: What happens to leaf discs during photosynthesis in a bicarbonate solution?
Initially, leaf discs sink because gases are removed by vacuum pressure, making them heavier. During photosynthesis, water is split to replenish chlorophyll electrons, releasing oxygen gas. This oxygen accumulates in the leaf discs, making them lighter and causing them to float. Faster floating indicates higher photosynthesis rates, allowing researchers to studying photosynthesis leaf disc experiment procedures.
Q5: What is the relationship between photosynthesis and the carbon cycle?
Photosynthesis removes carbon dioxide from the atmosphere through carbon fixation, converting it into glucose and other biomolecules. This process is a critical step in the carbon cycle. Increased atmospheric CO2 from burning fossil fuels disrupts this balance, making forests and ocean algae essential for reducing CO2 levels and mitigating climate change.
Q6: How do light-dependent and light-independent reactions differ in location and function?
Light-dependent reactions occur in the thylakoid membrane and use sunlight to excite chlorophyll electrons, generating ATP and NADPH while splitting water. Light-independent reactions occur in the stroma and use the ATP and NADPH from light reactions to fix carbon dioxide into glucose. Together, they convert light energy into chemical energy stored in sugars.
Q7: What are autotrophs and why are they important to ecosystems?
Autotrophs are organisms that capture light energy through photosynthesis to produce glucose, serving as primary producers. They convert sunlight into chemical energy that flows through food chains to consumers. Diverse autotrophs including plants, algae, and cyanobacteria provide the foundational energy source for nearly all life on Earth.