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Current Question (ID: 11358)

Question:
The reaction centre with respect to cyclic photophosphorylation is
Options:
  • 1. P₇₀₀
  • 2. P₆₈₀
  • 3. P₅₄₀
  • 4. P₆₆₀
Solution:
In cyclic photophosphorylation, the electron from the excited chlorophyll molecule of PS I is passed to the electron acceptor A0, then to A1, then to Fe-S protein, then to ferredoxin (Fd), and finally back to the P700 molecule. The P700 molecule is the reaction center in cyclic photophosphorylation, where the excited electron is derived from the excited chlorophyll molecule of PS I.

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Expected JSON Format:

{
  "question": "The mass of carbon present in 0.5 mole of $\\mathrm{K}_4[\\mathrm{Fe(CN)}_6]$ is:",
  "options": [
    {
      "id": 1,
      "text": "1.8 g"
    },
    {
      "id": 2,
      "text": "18 g"
    },
    {
      "id": 3,
      "text": "3.6 g"
    },
    {
      "id": 4,
      "text": "36 g"
    }
  ],
  "solution": "\\begin{align}\n&\\text{Hint: Mole concept}\\\\\n&1 \\text{ mole of } \\mathrm{K}_4[\\mathrm{Fe(CN)}_6] = 6 \\text{ moles of carbon atom}\\\\\n&0.5 \\text{ mole of } \\mathrm{K}_4[\\mathrm{Fe(CN)}_6] = 6 \\times 0.5 \\text{ mol} = 3 \\text{ mol}\\\\\n&1 \\text{ mol of carbon} = 12 \\text{ g}\\\\\n&3 \\text{ mol carbon} = 12 \\times 3 = 36 \\text{ g}\\\\\n&\\text{Hence, 36 g mass of carbon present in 0.5 mole of } \\mathrm{K}_4[\\mathrm{Fe(CN)}_6].\n\\end{align}",
  "correct_answer": 4
}