Technologies which convert light into energy, and vice versa, rely on complex, microscopic transport processes in the condensed phase, which obey the laws of quantum mechanics, but hitherto lack systematic analysis and modeling. Given our much improved understanding of multicomponent, disordered, highly structured, open quantum systems, this ‘focus on’ collection collects cuttingedge research on theoretical and experimental aspects of quantum transport in truly complex systems as defined, e.g., by the macromolecular functional complexes at the heart of photosynthesis, by organic quantum wires, or even photovoltaic devices. To what extent microscopic quantum coherence effects can (be made to) impact on macroscopic transport behavior ...
Understanding energy transport in quantum systems is crucial for an understanding of light-harvestin...
We explore various design principles for efficient excitation energy transport in complex quantum sy...
We study quantum enhancement of transport in open systems in the presence of disorder and dephasing....
Technologies which convert light into energy, and vice versa, rely on complex, microscopic transport...
Recent experimental investigations of excitonic transport in photosynthesis indicate that quantum co...
The investigation of real-time dynamics of charged and neutral quantum excitation propagating throu...
How could quantum mechanics possibly be important in biology We will discuss this question in the li...
Recent experiments show evidence for long-lived electronic coherence in several photosynthetic compl...
One of the most surprising and significant advances in the study of the photosynthetic light- harves...
For many years, the fields of quantum optics and biology have rarely shared a common path. In quantu...
AbstractQuantum coherence improves the quantum efficiency of excitonic energy transport within the F...
To investigate the effect of quantum coherence on electronic energy transfer, which is the subject o...
Recent theoretical studies show that decoherence process can enhance transport efficiency in quantum...
AbstractThe idea that quantum-mechanical phenomena can play nontrivial roles in biology has fascinat...
Recent observations of coherence in photosynthetic complexes have led to the question of whether qua...
Understanding energy transport in quantum systems is crucial for an understanding of light-harvestin...
We explore various design principles for efficient excitation energy transport in complex quantum sy...
We study quantum enhancement of transport in open systems in the presence of disorder and dephasing....
Technologies which convert light into energy, and vice versa, rely on complex, microscopic transport...
Recent experimental investigations of excitonic transport in photosynthesis indicate that quantum co...
The investigation of real-time dynamics of charged and neutral quantum excitation propagating throu...
How could quantum mechanics possibly be important in biology We will discuss this question in the li...
Recent experiments show evidence for long-lived electronic coherence in several photosynthetic compl...
One of the most surprising and significant advances in the study of the photosynthetic light- harves...
For many years, the fields of quantum optics and biology have rarely shared a common path. In quantu...
AbstractQuantum coherence improves the quantum efficiency of excitonic energy transport within the F...
To investigate the effect of quantum coherence on electronic energy transfer, which is the subject o...
Recent theoretical studies show that decoherence process can enhance transport efficiency in quantum...
AbstractThe idea that quantum-mechanical phenomena can play nontrivial roles in biology has fascinat...
Recent observations of coherence in photosynthetic complexes have led to the question of whether qua...
Understanding energy transport in quantum systems is crucial for an understanding of light-harvestin...
We explore various design principles for efficient excitation energy transport in complex quantum sy...
We study quantum enhancement of transport in open systems in the presence of disorder and dephasing....