Q.A tree is believed to be releasing oxygen during night time. Do you believe the truthfulness of this statement? Justify your answer by giving reasons?
Imagine a solar panel. Sunlight hits it, and out comes electricity. The light reaction in photosynthesis is exactly that — a solar panel built into every green leaf. But instead of electricity, it produces two chemical fuels: ATP (the energy currency of the cell) and NADPH (a reducing agent that carries high-energy electrons). These two molecules are then used in the next phase (the Calvin cycle) to build glucose from carbon dioxide.
The key insight: the light reaction is the only part of photosynthesis that directly uses light. Everything after it runs on the ATP and NADPH it produces.
Where does it happen?
Inside the chloroplast, there are flattened, disc-like sacs called thylakoids. Their membranes are packed with pigment molecules (chlorophyll a, chlorophyll b, carotenoids) and protein complexes. This is the stage. The space inside the thylakoid is the lumen; the fluid outside is the stroma.
What actually happens? (The precise statement)
When a photon of light strikes a chlorophyll molecule, an electron gets excited — it jumps to a higher energy level. That excited electron is then passed through a chain of carriers embedded in the thylakoid membrane, like a bucket brigade. As it moves, its energy is used to pump protons (H+) from the stroma into the thylakoid lumen, building up a concentration gradient. That gradient drives ATP synthesis (via ATP synthase). Meanwhile, the electron eventually ends up reducing NADP+ to NADPH.
But here's the catch: the chlorophyll that lost an electron needs to replace it. That electron comes from water (H2O). Splitting water releases oxygen gas (O2) as a byproduct — that's the oxygen we breathe.
2H2O+2NADP++3ADP+3PilightO2+2NADPH+3ATP
The two photosystems: a closer look
There are two distinct pigment systems, Photosystem II (PSII) and Photosystem I (PSI), named in the order they were discovered, not the order they work. Light hits both.
PSII absorbs light, excites an electron, and passes it to an electron acceptor. The electron hole in PSII is filled by splitting water. This releases O2 and protons into the lumen.
The electron travels down an electron transport chain (cytochrome b6f complex), pumping protons along the way.
The electron reaches PSI, which also absorbs light and re-excites the electron to an even higher energy level.
That high-energy electron is finally used to reduce NADP+ to NADPH.
The proton gradient built up during step 2 drives ATP synthase to make ATP. This entire flow is called non-cyclic photophosphorylation — the most common pathway.
Note
There is also a cyclic pathway where electrons from PSI cycle back to the electron transport chain instead of reducing NADP+. This produces only ATP, no NADPH or oxygen. It happens when the cell needs extra ATP.
The statement is false - photosynthetic oxygen evolution needs light (it depends on photolysis in the light reaction), so no tree releases oxygen through photosynthesis at night; instead, all plant cells, like all living cells, continue respiring in the dark, consuming oxygen and releasing carbon dioxide. …
Step 1. Oxygen evolution during photosynthesis happens specifically during the light reaction, at the Oxygen Evolving Complex on PS II, which splits water using light-generated excitation energy.
Step 2. With no light available at night, PS II cannot be excited and the Oxygen Evolving Complex cannot split water, so the entire light reaction - and with it, oxygen evolution - simply does not run in darkness.
Step 3. At the same time, respiration is a continuous process running in every living cell, including plant cells, at all times, regardless of light - unlike photosynthesis, which only proceeds when light is available.
Step 4. During the night, therefore, a tree's cells continue respiring as usual, consuming oxygen and releasing carbon dioxide, with no offsetting photosynthetic oxygen production to counterbalance it, since photosynthesis has stopped entirely. …
Confusing the light-independent dark reaction (which still needs light-generated ATP/NADPH from earlier) with a claim that oxygen release itself can happen without light. …