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This deck focuses on Photosynthesis, giving you a quick way to review the definitions, rules, and examples that matter most for AP Biology.
Study Photosynthesis in AP Biology with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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Where in the chloroplast do light-dependent reactions occur?
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Thylakoid membranes. Contain photosystems and electron transport chains.
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This deck focuses on Photosynthesis, giving you a quick way to review the definitions, rules, and examples that matter most for AP Biology.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: Thylakoid membranes. Contain photosystems and electron transport chains.
Answer: 6CO2+6H2O+light→C6H12O6+6O2. Converts light energy, water, and CO2 into glucose and oxygen.
Answer: C4 plants fix CO2 into a 4-carbon compound. Spatial separation reduces photorespiration in hot climates.
Answer: Ribulose bisphosphate (RuBP). Five-carbon acceptor molecule for CO2 in carbon fixation.
Answer: Glyceraldehyde-3-phosphate (G3P). Precursor molecule used to synthesize glucose and regenerate RuBP.
Answer: Carbon source for glucose synthesis. Fixed into organic molecules during the Calvin cycle.
Answer: Carbon fixation, reduction, regeneration. Sequential steps that convert CO2 into glucose precursors.
Answer: Represents electron flow in light reactions. Shows energy changes as electrons move between photosystems.
Answer: Carbon fixation, reduction, regeneration. Sequential steps that convert CO2 into glucose precursors.
Answer: Glucose. Six-carbon sugar formed from CO2 fixation and reduction.
Answer: Green. Chlorophyll reflects green light rather than absorbing it.
Answer: Thylakoid. Membrane structures that house photosynthetic pigments.
Answer: Water (H2O). Split to provide electrons and release oxygen gas.
Answer: Thylakoid. Membrane structures that house photosynthetic pigments.
Answer: ATP. Energy currency synthesized via chemiosmosis in thylakoids.
Answer: Stroma. Fluid-filled space surrounding thylakoids where carbon fixation occurs.
Answer: Blue and green light. Accessory pigments that broaden photosynthetic light absorption.
Answer: Light-dependent reactions and Calvin cycle. Light reactions produce ATP/NADPH; Calvin cycle fixes carbon.
Answer: 5-carbon sugar involved in CO2 fixation. Acceptor molecule that binds with CO2 in carbon fixation.
Answer: NADPH. Electron acceptor reduced at the end of photosystem I.
Answer: Represents electron flow in light reactions. Shows energy changes as electrons move between photosystems.
Answer: Glucose. Six-carbon sugar formed from CO2 fixation and reduction.
Answer: Electron transport chain. Creates proton concentration difference for ATP synthesis.
Answer: Ribulose bisphosphate (RuBP). Five-carbon acceptor molecule for CO2 in carbon fixation.
Answer: Carbon source for glucose synthesis. Fixed into organic molecules during the Calvin cycle.
Answer: C4 plants fix CO2 into a 4-carbon compound. Spatial separation reduces photorespiration in hot climates.
Answer: Reducing power. Donates electrons for carbon dioxide reduction reactions.
Answer: NADP+. Accepts electrons to form NADPH for the Calvin cycle.
Answer: ATP. Powers carbon fixation and G3P synthesis reactions.
Answer: ATP. Energy currency synthesized via chemiosmosis in thylakoids.
Answer: A process where oxygen is fixed instead of CO2. Wasteful process where rubisco binds oxygen instead of CO2.
Answer: Rubisco. Catalyzes the first step of carbon fixation in photosynthesis.
Answer: Proton gradient. Chemiosmotic force drives ATP synthase rotation.
Answer: Produce ATP without NADPH. Balances ATP/NADPH ratio for optimal Calvin cycle function.
Answer: Water (H2O). Split to provide electrons and release oxygen gas.
Answer: Proton gradient. Chemiosmotic force drives ATP synthase rotation.
Answer: Oxygen. Released when water molecules are split in photosystem II.
Answer: Reducing power. Donates electrons for carbon dioxide reduction reactions.
Answer: Green. Chlorophyll reflects green light rather than absorbing it.
Answer: Produce ATP without NADPH. Balances ATP/NADPH ratio for optimal Calvin cycle function.
Answer: Energy source for the Calvin cycle. Provides energy for carbon fixation and G3P formation.
Answer: NADPH. Electron acceptor reduced at the end of photosystem I.
Answer: ATP. Stores and transfers energy in phosphate bonds.
Answer: Energy source for the Calvin cycle. Provides energy for carbon fixation and G3P formation.
Answer: Blue and green light. Accessory pigments that broaden photosynthetic light absorption.
Answer: Light-dependent reactions and Calvin cycle. Light reactions produce ATP/NADPH; Calvin cycle fixes carbon.
Answer: Chloroplast. Contains thylakoids and stroma where photosynthetic reactions occur.
Answer: ATP. Stores and transfers energy in phosphate bonds.
Answer: Produce NADPH. Reduces NADP+ to NADPH using light energy.
Answer: Photosystem II. P680 reaction center splits water and begins electron flow.
Answer: Produce NADPH. Reduces NADP+ to NADPH using light energy.
Answer: Rubisco. Catalyzes the first step of carbon fixation in photosynthesis.
Answer: NADP+. Electron acceptor that becomes reducing agent NADPH.
Answer: Electron donor. Provides electrons when split by photosystem II.
Answer: Oxygen. Released when water molecules are split in photosystem II.
Answer: ATP synthesis using light energy. Light-driven phosphorylation of ADP to form ATP.
Answer: NADP+. Accepts electrons to form NADPH for the Calvin cycle.
Answer: Chlorophyll. Green pigment that absorbs light energy for photosynthesis.
Answer: Stroma. Fluid-filled space surrounding thylakoids where carbon fixation occurs.
Answer: 6CO2+6H2O+light→C6H12O6+6O2. Converts light energy, water, and CO2 into glucose and oxygen.
Answer: Expand the range of light absorption. Capture wavelengths chlorophyll cannot absorb efficiently.
Answer: Glyceraldehyde-3-phosphate (G3P). Precursor molecule used to synthesize glucose and regenerate RuBP.
Answer: Chloroplast. Contains thylakoids and stroma where photosynthetic reactions occur.
Answer: ATP synthesis using light energy. Light-driven phosphorylation of ADP to form ATP.
Answer: Sunlight. Provides photons that excite chlorophyll electrons.
Answer: Stomata open at night. Temporal separation prevents water loss during hot days.
Answer: Light-dependent reactions. Water splitting in photosystem II releases oxygen gas.
Answer: ATP. Powers carbon fixation and G3P synthesis reactions.
Answer: A process where oxygen is fixed instead of CO2. Wasteful process where rubisco binds oxygen instead of CO2.
Answer: Thylakoid membranes. Contain photosystems and electron transport chains.
Answer: Electron donor. Provides electrons when split by photosystem II.
Answer: Expand the range of light absorption. Capture wavelengths chlorophyll cannot absorb efficiently.
Answer: Light-dependent reactions. Water splitting in photosystem II releases oxygen gas.
Answer: Stomata open at night. Temporal separation prevents water loss during hot days.
Answer: NADP+. Electron acceptor that becomes reducing agent NADPH.
Answer: Sunlight. Provides photons that excite chlorophyll electrons.
Answer: 5-carbon sugar involved in CO2 fixation. Acceptor molecule that binds with CO2 in carbon fixation.
Answer: Photosystem II. P680 reaction center splits water and begins electron flow.
Answer: Electron transport chain. Creates proton concentration difference for ATP synthesis.
Answer: Chlorophyll. Green pigment that absorbs light energy for photosynthesis.