Of all known photosynthetic organisms, the green sulfur bacteria are able to survive under the lowest illumination conditions due to highly efficient photon management and exciton transport enabled by their special organelles, the chlorosomes, which consist mainly of self-assembled bacteriochlorophyll c, d, or e molecules. A challenging task is to mimic the principle of self-assembling chromophores in artificial light-harvesting devices. In the present work we have studied exciton transport and dissociation in a bilayer of an electron-accepting semiconductor and an artificial self-assembling zinc porphyrin that mimics natural chlorosomal bacteriochlorophylls using time-resolved microwave conductivity (TRMC). Scanning electron microscopy (SE...
Chlorosomes are one of the characteristic light-harvesting antennas from green sulfur bacteria. Thes...
Chlorosomes are one of the elegant light-harvesting antenna systems in anoxygenic photosynthetic bac...
As chemists, we often aim to solve each new problem with a unique molecule. Biology takes the opposi...
Of all known photosynthetic organisms, the green sulfur bacteria are able to survive under the lowes...
The photosynthetic apparatus of green sulfur bacteria, the chlorosome, is generally considered as a ...
A porphyrin aggregate is reported that exhibits novel exciton state properties for light-harvesting ...
Being able to control in time and space the positioning, orientation, movement, and sense of rotatio...
The direct connection between a photosensitizer and an electron mediator, achieved by a precise arra...
Being able to control in time and space the positioning, orientation, movement, and sense of rotatio...
Mimicking green plants’ and bacteria’s extraordinary ability to absorb a vast number of photons and ...
The direct connection between a photosensitizer and an electron mediator, achieved by a precise arra...
Mimicking green plants\u27 and bacteria\u27s extraordinary ability to absorb a vast number of photon...
ABSTRACT: Chlorosomes are likely the largest and most efficient natural light-harvesting photosynthe...
Hybrid artificial antenna systems, with implementation of nature's basic concept of self-organizatio...
International audienceHybrid artificial antenna systems, with implementation of nature’s basic conce...
Chlorosomes are one of the characteristic light-harvesting antennas from green sulfur bacteria. Thes...
Chlorosomes are one of the elegant light-harvesting antenna systems in anoxygenic photosynthetic bac...
As chemists, we often aim to solve each new problem with a unique molecule. Biology takes the opposi...
Of all known photosynthetic organisms, the green sulfur bacteria are able to survive under the lowes...
The photosynthetic apparatus of green sulfur bacteria, the chlorosome, is generally considered as a ...
A porphyrin aggregate is reported that exhibits novel exciton state properties for light-harvesting ...
Being able to control in time and space the positioning, orientation, movement, and sense of rotatio...
The direct connection between a photosensitizer and an electron mediator, achieved by a precise arra...
Being able to control in time and space the positioning, orientation, movement, and sense of rotatio...
Mimicking green plants’ and bacteria’s extraordinary ability to absorb a vast number of photons and ...
The direct connection between a photosensitizer and an electron mediator, achieved by a precise arra...
Mimicking green plants\u27 and bacteria\u27s extraordinary ability to absorb a vast number of photon...
ABSTRACT: Chlorosomes are likely the largest and most efficient natural light-harvesting photosynthe...
Hybrid artificial antenna systems, with implementation of nature's basic concept of self-organizatio...
International audienceHybrid artificial antenna systems, with implementation of nature’s basic conce...
Chlorosomes are one of the characteristic light-harvesting antennas from green sulfur bacteria. Thes...
Chlorosomes are one of the elegant light-harvesting antenna systems in anoxygenic photosynthetic bac...
As chemists, we often aim to solve each new problem with a unique molecule. Biology takes the opposi...