Q.Suppose there were plants that had a high concentration of Chlorophyll b, but lacked chlorophyll a, would it carry out photosynthesis? Then why do plants have chlorophyll b and other accessory pigments?
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Start your 14-day free trial to unlock the full solution →A plant with only chlorophyll b and no chlorophyll a cannot photosynthesise, because chlorophyll a is the reaction-centre pigment; accessory pigments like chlorophyll b only harvest extra wavelengths and pass the energy to chlorophyll a while also protecting it.
Photosynthetic pigments fall into two roles:
- Chlorophyll a is the chief pigment and forms the reaction centre of the photosystems. It is the only pigment able to convert the trapped light energy into chemical energy (by releasing an excited electron to the electron transport chain). Photosynthesis cannot proceed without it.
- Chlorophyll b, xanthophylls and carotenoids are accessory (antenna) pigments. They absorb light of wavelengths that chlorophyll a cannot absorb well, and then transfer this absorbed energy to chlorophyll a at the reaction centre.
So if a plant had a high concentration of chlorophyll b but no chlorophyll a, the chlorophyll b could still absorb light, but there would be no reaction centre to receive the energy and drive the photochemical reactions. The energy would have nowhere to go, and photosynthesis would not occur.
Why then do plants bother having chlorophyll b and other accessory pigments? …
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