Creating artificial systems that mimic and surpass those found in nature is one of the great challenges of modern science. In the context of photosynthetic light harvesting, the difficulty lies in attaining utmost control over the energetics, positions and relative orientations of chromophores in densely packed arrays to transfer electronic excitation energy to desired locations with high efficiency. Toward achieving this goal, we use a highly versatile biomimetic protein scaffold from the tobacco mosaic virus coat protein on which chromophores can be attached at precise locations via linkers of differing lengths and rigidities. We show that minor linker modifications, including switching chiral configurations and alkyl chain shortening, le...
In strong plasmon–exciton coupling, a surface plasmon mode is coupled to an array of localized emitt...
As chemists, we often aim to solve each new problem with a unique molecule. Biology takes the opposi...
Light-responsive proteins enable control of biological processes with unprecedented precision, holdi...
Manipulating the photophysical properties of light-absorbing units is a crucial element in the desig...
Control over excitons enables electronic energy to be harnessed and transported for light harvesting...
Photosynthetic organisms utilize dynamic and complex networks of pigments bound within light-harvest...
Natural light harvesting complexes absorbs and transfers energy towards the reaction center with rem...
The self-assembling protein shells of viruses have provided convenient scaffolds for the constructio...
Coarse-grained molecular dynamics simulations of light-harvesting complex II in thylakoid membrane r...
Living materials are based on proteins that adapt and change in structure and function continuously ...
Energy transfer in photosynthesis is orchestrated via dynamic networks of pigment arrays embedded wi...
The world’s energy requirements are always increasing, but sunlight provides more than sufficient en...
We present molecular mechanics and spectroscopic calculations on prototype artificial light harvesti...
The biological light-harvesting process offers an unlimited source of inspiration. The high level of...
Proteins have the potential to serve as nanomachines with well-controlled structural movements, and ...
In strong plasmon–exciton coupling, a surface plasmon mode is coupled to an array of localized emitt...
As chemists, we often aim to solve each new problem with a unique molecule. Biology takes the opposi...
Light-responsive proteins enable control of biological processes with unprecedented precision, holdi...
Manipulating the photophysical properties of light-absorbing units is a crucial element in the desig...
Control over excitons enables electronic energy to be harnessed and transported for light harvesting...
Photosynthetic organisms utilize dynamic and complex networks of pigments bound within light-harvest...
Natural light harvesting complexes absorbs and transfers energy towards the reaction center with rem...
The self-assembling protein shells of viruses have provided convenient scaffolds for the constructio...
Coarse-grained molecular dynamics simulations of light-harvesting complex II in thylakoid membrane r...
Living materials are based on proteins that adapt and change in structure and function continuously ...
Energy transfer in photosynthesis is orchestrated via dynamic networks of pigment arrays embedded wi...
The world’s energy requirements are always increasing, but sunlight provides more than sufficient en...
We present molecular mechanics and spectroscopic calculations on prototype artificial light harvesti...
The biological light-harvesting process offers an unlimited source of inspiration. The high level of...
Proteins have the potential to serve as nanomachines with well-controlled structural movements, and ...
In strong plasmon–exciton coupling, a surface plasmon mode is coupled to an array of localized emitt...
As chemists, we often aim to solve each new problem with a unique molecule. Biology takes the opposi...
Light-responsive proteins enable control of biological processes with unprecedented precision, holdi...