Quantum-enhanced capture of photons using optical ratchet states
arXiv:1504.05849 · doi:10.1021/acs.jpcc.7b07138
Abstract
Natural and artificial light harvesting systems often operate in a regime where the flux of photons is relatively low. Besides absorbing as many photons as possible it is therefore paramount to prevent excitons from annihilation via photon re-emission until they have undergone an irreversible energy conversion process. Taking inspiration from photosynthetic antenna structures, we here consider ring-like systems and introduce a class of states we call ratchets: excited states capable of absorbing but not emitting light. This allows our antennae to absorb further photons whilst retaining the excitations from those that have already been captured. Simulations for a ring of four sites reveal a peak power enhancement by up to a factor of 35 under ambient conditions owing to a combination of ratcheting and the prevention of emission through dark-state population. In the slow extraction limit the achievable power enhancement due to ratcheting alone exceeds 20%.
major revision with improved model (all data and figures updated)
References in corpus (8)
- Experimental loophole-free violation of a Bell inequality using entangled electron spins separated by 1.3 km
- QuTiP 2: A Python framework for the dynamics of open quantum systems
- Single-Photon Switching and Entanglement of Solid-State Qubits in an Integrated Nanophotonic System
- Observation of Dicke Superradiance for Two Artificial Atoms in a Cavity with High Decay Rate
- Delocalized Quantum States Enhance Photocell Efficiency
- Bath induced coherence and the secular approximation
- Photocell Optimisation Using Dark State Protection
- Exciton Lifetime Paradoxically Enhanced by Dissipation and Decoherence - Toward Efficient Energy Conversion of Solar Cell
Cited by in corpus (23)
- Superabsorption in an organic microcavity: towards a quantum battery
- Colloquium: Quantum Batteries
- Optimizing co-operative multi-environment dynamics in a dark-state-enhanced photosynthetic heat engine
- Photocell Optimisation Using Dark State Protection
- Trapped-ion quantum simulation of excitation transport: disordered, noisy, and long-range connected quantum networks
- Classification of Coherent Enhancements of Light-Harvesting Processes
- Coherent and controllable enhancement of light-harvesting efficiency
- Light-harvesting with guide-slide superabsorbing condensed-matter nanostructures
- Enhancement of Photovoltaic Current Generation through Dark States in Donor-Acceptor Pairs of Tungsten-based Transition Metal Di-Chalcogenides (TMDCs)
- Optimal power generation using dark states in dimers strongly coupled to their environment
- Environmentally improved coherent light harvesting
- Dark states and delocalization: competing effects of quantum coherence on the efficiency of light harvesting systems
- Double-excitation manifold's effect on exciton transfer dynamics and the efficiency of coherent light harvesting
- The dark side of energy transport along excitonic wires: On-site energy barriers facilitate efficient, vibrationally-mediated transport through optically dark subspaces
- Light-harvesting enhanced by quantum ratchet states
- Determinant representations of spin-operator matrix elements in the XX spin chain and their applications
- Connecting bright and dark states through accidental degeneracy caused by lack of symmetry
- An analytic expression for the optical exciton transition rates in the polaron frame
- Light-harvesting efficiency cannot depend on optical coherence in the absence of orientational order
- Structure-based Hamiltonian model for IsiA uncovers a highly robust pigment protein complex
- How Much is the Efficiency of Solar Cells Enhanced by Quantum Coherence?
- Quantum Photovoltaic Cells Driven by Photon Pulses
- Optical signatures of coherence in molecular dimers