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This deck focuses on The Nitrogen Cycle, giving you a quick way to review the definitions, rules, and examples that matter most for AP Environmental Science.
Study The Nitrogen Cycle in AP Environmental Science with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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Identify the process that converts atmospheric nitrogen into ammonia.
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Nitrogen fixation. Breaks the strong triple bond in N2 to create bioavailable forms.
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This deck focuses on The Nitrogen Cycle, giving you a quick way to review the definitions, rules, and examples that matter most for AP Environmental Science.
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: Nitrogen fixation. Breaks the strong triple bond in N2 to create bioavailable forms.
Answer: Increased crop yields. Synthetic fertilizers dramatically boost agricultural productivity.
Answer: NH3. Product of nitrogen fixation with one nitrogen and three hydrogens.
Answer: Convert N2 to ammonia. Use nitrogenase to break triple bonds in atmospheric nitrogen.
Answer: The atmosphere. Contains 78% of Earth's nitrogen in unreactive N2 form.
Answer: Denitrification. Anaerobic bacteria reduce nitrates, completing the nitrogen cycle.
Answer: Water pollution. Runoff causes eutrophication and groundwater contamination.
Answer: Acid rain formation. Nitrogen oxides react with water to form nitric acid.
Answer: Ammonium nitrate. Common synthetic fertilizer providing readily available nitrogen.
Answer: Nitrates (NO3−). Most oxidized and soluble form readily absorbed by plant roots.
Answer: N2O. Two nitrogen atoms bonded to one oxygen atom.
Answer: Denitrification. Occurs in oxygen-poor conditions like wetlands and sediments.
Answer: Nitrifying bacteria. First step in two-stage nitrification process.
Answer: Acid rain formation. Nitrogen oxides react with water to form nitric acid.
Answer: Ammonium nitrate. Common synthetic fertilizer providing readily available nitrogen.
Answer: N2O. Two nitrogen atoms bonded to one oxygen atom.
Answer: Contributes to smog. Nitrogen oxides contribute to photochemical air pollution.
Answer: Nitrates (NO3−). Highly soluble and mobile form preferred by most plants.
Answer: Contributes to smog. Nitrogen oxides contribute to photochemical air pollution.
Answer: Nitrification. First oxidation step in the two-stage nitrification process.
Answer: Nitrous oxide (N2O). Potent greenhouse gas with 300 times warming potential of CO2.
Answer: Ammonification. Decomposition releases ammonia from organic nitrogen compounds.
Answer: Nitrifying bacteria. Complete the nitrification process by oxidizing nitrites.
Answer: Nitrification. Two-step oxidation process performed by soil bacteria.
Answer: Ammonification. Bacterial decomposition converts organic nitrogen to inorganic forms.
Answer: Assimilation. Plants absorb nitrogen compounds through their root systems.
Answer: Denitrification. Occurs in oxygen-poor conditions like wetlands and sediments.
Answer: Nitrogenase. Catalyzes the energy-intensive conversion of N2 to NH3.
Answer: Denitrification. Requires oxygen-free environment for bacteria to function.
Answer: Nitrogen fixation. High energy electrical discharge breaks N2 bonds naturally.
Answer: Convert N2 to ammonia. Use nitrogenase to break triple bonds in atmospheric nitrogen.
Answer: Assimilation. Plants absorb nitrogen compounds through their root systems.
Answer: Nitrogenase. Catalyzes the energy-intensive conversion of N2 to NH3.
Answer: Host nitrogen-fixing bacteria. Provide shelter and nutrients for nitrogen-fixing bacteria.
Answer: Water pollution. Runoff causes eutrophication and groundwater contamination.
Answer: Cyanobacteria. Blue-green algae that fix nitrogen in marine environments.
Answer: Nitrates (NO3−). Highly soluble and mobile form preferred by most plants.
Answer: Nitrification. First step in nitrification where ammonia becomes nitrite.
Answer: Nitrogen gas (N2). Returns nitrogen to atmosphere, completing the cycle.
Answer: Nitrogen-fixing bacteria. Contain nitrogenase enzyme that converts N2 to NH3.
Answer: Ammonia (NH3). Direct product of nitrogen fixation by bacterial nitrogenase.
Answer: Increased crop yields. Synthetic fertilizers dramatically boost agricultural productivity.
Answer: Nitrification. Two-step oxidation process performed by soil bacteria.
Answer: NO2−. Intermediate form with one nitrogen and two oxygen atoms.
Answer: Eutrophication. Excess nitrogen causes algal blooms and oxygen depletion.
Answer: Host nitrogen-fixing bacteria. Provide shelter and nutrients for nitrogen-fixing bacteria.
Answer: The atmosphere. Contains 78% of Earth's nitrogen in unreactive N2 form.
Answer: Nitrogen gas (N2). Completes the nitrogen cycle by returning to atmosphere.
Answer: Nitrifying bacteria. First step in two-stage nitrification process.
Answer: Nitrogen-fixing bacteria. Contain nitrogenase enzyme that converts N2 to NH3.
Answer: Nitrogen fixation. Converts inert atmospheric N2 into reactive compounds.
Answer: Nitrogen fixation. Breaks the strong triple bond in N2 to create bioavailable forms.
Answer: Cyanobacteria. Blue-green algae that fix nitrogen in marine environments.
Answer: Promotes growth. Essential nutrient for protein synthesis and chlorophyll production.
Answer: Denitrification. Requires oxygen-free environment for bacteria to function.
Answer: Ammonification. Decomposition releases ammonia from organic nitrogen compounds.
Answer: Ammonification. Bacterial decomposition converts organic nitrogen to inorganic forms.
Answer: Denitrification. Anaerobic bacteria reduce nitrates, completing the nitrogen cycle.
Answer: NH3. Product of nitrogen fixation with one nitrogen and three hydrogens.
Answer: Nitrates (NO3−). Most oxidized and soluble form readily absorbed by plant roots.
Answer: Mutualism. Both organisms benefit from the nitrogen-fixing relationship.
Answer: NO3−. One nitrogen atom with three oxygen atoms and negative charge.
Answer: Nitrogen gas (N2). Returns nitrogen to atmosphere, completing the cycle.
Answer: Nitrogen fixation. High energy electrical discharge breaks N2 bonds naturally.
Answer: Nitrification. First step in nitrification where ammonia becomes nitrite.
Answer: NO2−. Intermediate form with one nitrogen and two oxygen atoms.
Answer: Ammonification. Break down proteins and nucleic acids, releasing ammonia.
Answer: Eutrophication. Excess nitrogen causes algal blooms and oxygen depletion.
Answer: Nitrifying bacteria. Complete the nitrification process by oxidizing nitrites.
Answer: Fertilizer production. Industrial Haber-Bosch process creates synthetic nitrogen compounds.
Answer: Fertilizer production. Industrial Haber-Bosch process creates synthetic nitrogen compounds.
Answer: Mutualism. Both organisms benefit from the nitrogen-fixing relationship.
Answer: Nitrogen fixation. Converts inert atmospheric N2 into reactive compounds.
Answer: Nitrification. First oxidation step in the two-stage nitrification process.
Answer: Nitrogen gas (N2). Completes the nitrogen cycle by returning to atmosphere.
Answer: Ammonia (NH3). Direct product of nitrogen fixation by bacterial nitrogenase.
Answer: Ammonification. Break down proteins and nucleic acids, releasing ammonia.
Answer: NO3−. One nitrogen atom with three oxygen atoms and negative charge.
Answer: Nitrous oxide (N2O). Potent greenhouse gas with 300 times warming potential of CO2.
Answer: Promotes growth. Essential nutrient for protein synthesis and chlorophyll production.