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Updated: Jan 8, 2026

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Ergotropy of a Photosynthetic Reaction Center
Trishna Kalita1, Manash Jyoti Sarmah1, Javed Akhtar1
1QuAInT Research Group, Department of Chemistry, Gauhati University, Guwahati, Assam 781014, India.
Abstract:
We theoretically analyze the Photosystem II reaction center using a quantum master equation approach, where excitonic and charge-transfer rates are computed at the Redfield and Förster levels with realistic spectral densities. The focus is on ergotropy, the maximum work extractable from a quantum state without energy loss. We compute the ergotropy by constructing passive states in a thermodynamic sense. Among the electron transfer pathways, those involving charge separation between ChlD1 and PheD1, as well as a route passing through three sequential charge-separated states, yield higher ergotropy, suggesting greater capacity for work extraction, akin to quantum energy capacitors. A third pathway, bypassing the ChlD1, PheD1 pair, shows a significantly reduced ergotropy. These differences arise from population-induced transitions between active and passive regimes. Our findings highlight how biological systems may exploit nonequilibrium population structures to optimize energy conversion, connecting quantum thermodynamic principles to biological energy harvesting.
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