Sustainability of environment-assisted energy transfer in quantum photobiological complexes
arXiv:1804.04832 · doi:10.1002/andp.201600185
Abstract
It is shown that quantum sustainability is a universal phenomenon which emerges during environment-assisted electronic excitation energy transfer (EET) in photobiological complexes (PBCs), such as photosynthetic reaction centers and centers of melanogenesis. We demonstrate that quantum photobiological systems must be sustainable for them to simultaneously endure continuous energy transfer and keep their internal structure from destruction or critical instability. These quantum effects occur due to the interaction of PBCs with their environment which can be described by means of the reduced density operator and effective non-Hermitian Hamiltonian (NH). Sustainable NH models of EET predict the coherence beats, followed by the decrease of coherence down to a small, yet non-zero value. This indicates that in sustainable PBCs, quantum effects survive on a much larger time scale than the energy relaxation of an exciton. We show that sustainable evolution significantly lowers the entropy of PBCs and improves the speed and capacity of EET.
6 pages (5 in the journal version), 4 composite figures
References in corpus (7)
- Environment-Assisted Quantum Walks in Photosynthetic Energy Transfer
- Dephasing assisted transport: Quantum networks and biomolecules
- Environment-Assisted Quantum Transport
- Efficiency of energy transfer in a light-harvesting system under quantum coherence
- Comparison and unification of non-Hermitian and Lindblad approaches with applications to open quantum optical systems
- Linear Quantum Entropy and Non-Hermitian Hamiltonians
- Quantum-statistical approach to electromagnetic wave propagation and dissipation inside dielectric media and nanophotonic and plasmonic waveguides
Cited by in corpus (6)
- Two-qubit entanglement generation through non-Hermitian Hamiltonians induced by repeated measurements on an ancilla
- Stability and metastability of trapless Bose-Einstein condensates and quantum liquids
- Evolution of a Non-Hermitian Quantum Single-Molecule Junction at Constant Temperature
- Phase space formulation of density operator for non-Hermitian Hamiltonians and its application in quantum theory of decay
- A comparative study on different non-Hermitian approaches for modeling open quantum systems
- Density operator approach to turbulent flows in plasma and atmospheric fluids