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name class date electron carriers 6. when sunlight excites electrons in…

Question

name class date
electron carriers

  1. when sunlight excites electrons in chlorophyll, how do the electrons change?
  2. what is a carrier molecule?
  3. circle the letter of the carrier molecule involved in photosynthesis.

a. h₂o c. co₂
b. nadp⁺ d. o₂

  1. how does nadp⁺ become nadph?

light - dependent reactions

  1. circle the letter of each sentence that is true about the light - dependent reactions.

a. they convert adp into atp.
b. they produce oxygen gas.
c. they convert oxygen into carbon dioxide.
d. they convert nadp⁺ into nadph.

  1. where do the light - dependent reactions take place?
  2. circle the letter of each sentence that is true about the light - dependent reactions.

a. high - energy electrons move through the electron transport chain from photosystem ii to photosystem i.
b. photosynthesis begins when pigments in photosystem i absorb light.
c. the difference in charges across the thylakoid membrane provides the energy to make atp.
d. pigments in photosystem i use energy from light to reenergize electrons.

  1. how does atp synthase produce atp?

Explanation:

Brief Explanations
  1. When sunlight excites electrons in chlorophyll, the electrons gain energy and move to a higher energy level.
  2. A carrier molecule is a molecule that can accept and carry electrons or other chemical groups.
  3. In photosynthesis, \(NADP^{+}\) (nicotinamide adenine dinucleotide phosphate) acts as a carrier molecule. It accepts electrons and hydrogen ions to form NADPH.
  4. \(NADP^{+}\) becomes NADPH by accepting electrons and a hydrogen ion (\(H^{+}\)).

10.

  • a. Light - dependent reactions convert ADP into ATP through chemiosmosis.
  • b. They produce oxygen gas as a by - product of water splitting.
  • d. They convert \(NADP^{+}\) into NADPH.
  1. Light - dependent reactions take place in the thylakoid membranes of chloroplasts.

12.

  • a. High - energy electrons move through the electron transport chain from photosystem II to photosystem I.
  • c. The difference in charges (proton gradient) across the thylakoid membrane provides the energy to make ATP.
  • d. Pigments in photosystem I use energy from light to reenergize electrons.
  1. ATP synthase produces ATP by using the energy from the proton gradient (flow of hydrogen ions \(H^{+}\)) across the thylakoid membrane. As \(H^{+}\) flow through ATP synthase, it catalyzes the addition of a phosphate group to ADP, forming ATP.

Answer:

  1. The electrons gain energy and move to a higher energy level.
  2. A molecule that can accept and carry electrons or other chemical groups.
  3. b. \(NADP^{+}\)
  4. By accepting electrons and a hydrogen ion (\(H^{+}\)).
  5. a. They convert ADP into ATP; b. They produce oxygen gas; d. They convert \(NADP^{+}\) into NADPH.
  6. In the thylakoid membranes of chloroplasts.
  7. a. High - energy electrons move through the electron transport chain from photosystem II to photosystem I; c. The difference in charges across the thylakoid membrane provides the energy to make ATP; d. Pigments in photosystem I use energy from light to reenergize electrons.
  8. By using the energy from the proton gradient (flow of \(H^{+}\)) across the thylakoid membrane. As \(H^{+}\) flow through ATP synthase, it catalyzes the addition of a phosphate group to ADP, forming ATP.