Efficient light harvesting and photon sensing via engineered cooperative effects
arXiv:2105.07896 · doi:10.1088/1367-2630/ac4127
Abstract
Efficient devices for light harvesting and photon sensing are fundamental building blocks of basic energy science and many essential technologies. Recent efforts have turned to biomimicry to design the next generation of light-capturing devices, partially fueled by an appreciation of the fantastic efficiency of the initial stages of natural photosynthetic systems at capturing photons. In such systems extended excitonic states are thought to play a fundamental functional role, inducing cooperative coherent effects, such as superabsorption of light and supertransfer of photoexcitations. Inspired by this observation, we design an artificial light-harvesting and photodetection device that maximally harnesses cooperative effects to enhance efficiency. The design relies on separating absorption and transfer processes (energetically and spatially) in order to overcome the fundamental obstacle to exploiting cooperative effects to enhance light capture: the enhanced emission processes that accompany superabsorption. This engineered separation of processes greatly improves the efficiency and the scalability of the system.
53 pages, 15 figures
References in corpus (10)
- Environment-Assisted Quantum Walks in Photosynthetic Energy Transfer
- Environment-Assisted Quantum Transport
- Highly efficient energy excitation transfer in light-harvesting complexes: The fundamental role of noise-assisted transport
- Photon localization and Dicke superradiance in atomic gases
- Cooperativity in light scattering by cold atoms
- Delocalized Quantum States Enhance Photocell Efficiency
- Design principles and fundamental trade-offs in biomimetic light harvesting
- Opening-Assisted Coherent Transport in the Deep Classical Regime
- Optimal Dephasing for Ballistic Energy Transfer in Disordered Linear Chains
- Color Detection Using Chromophore-Nanotube Hybrid Devices
Cited by in corpus (8)
- Quantum-enhanced photoprotection in neuroprotein architectures emerges from collective light-matter interactions
- Enhanced robustness and dimensional crossover of superradiance in cuboidal nanocrystal superlattices
- Optical Properties of Concentric Nanorings of Quantum Emitters
- Noise-induced network topologies
- Universal stability of coherently diffusive 1D systems with respect to decoherence
- From Stochastic Hamiltonian to Quantum Simulation: Exploring Memory Effects in Exciton Dynamics
- Nanoscale Architecture for Frequency-Resolving Single-Photon Detectors
- Single-photon superradiance and subradiance in helical collectives of quantum emitters