This manuscript presents a strategy for controlling the transformation of excitonic states through the design of circuits made up of coupled organic dye molecules. Specifically, we show how unitary transformation matrices can be mapped to the Hamiltonians of physical systems of dye molecules with specified geometric and chemical properties. The evolution of these systems over specific time scales encodes the action of the unitary transformation. We identify bounds on the complexity of the transformations that can be represented by these circuits and on the optoelectronic properties of the dye molecules that comprise them. We formalize this strategy and apply it to determine the excitonic circuits of the four universal quantum logic gates: N...
Quantum computation promises to solve fundamental, yet otherwise intractable, problems across a rang...
Quantum computation has attracted much attention, among other things, due to its potentialities to s...
Molecular logic gates (MLG) are molecules which perform logic operations. Their integration into a c...
Simulating quantum mechanical evolutions in general is difficult on classical computers because the ...
Precisely arranged sets of dye molecules can utilized as elementary quantum computing elements. Here...
Unlike fixed designs, programmable circuit designs support an infinite number of operators. The func...
Constructing appropriate unitary matrix operators for new quantum algorithms and finding the minimum...
Applications of the concepts of quantum information theory are usually related to the powerful and c...
The design of new materials and chemicals derived entirely from computation has long been a goal of ...
Quantum computation is based on implementing selected unitary transformations which represent algori...
We give three methods for entangling quantum states in quantum dots. We do this by showing how to ta...
Regulating energy transfer pathways through materials is a central goal of nanotechnology, as a grea...
Computing on the (sub) nanoscale is discussed and illustrated by a specific example of charge transf...
International audienceQuantum Hamiltonian Computing is a recent approach that uses quantum systems, ...
We numerically investigate the implementation of small quantum algorithms, an arithmetic adder and t...
Quantum computation promises to solve fundamental, yet otherwise intractable, problems across a rang...
Quantum computation has attracted much attention, among other things, due to its potentialities to s...
Molecular logic gates (MLG) are molecules which perform logic operations. Their integration into a c...
Simulating quantum mechanical evolutions in general is difficult on classical computers because the ...
Precisely arranged sets of dye molecules can utilized as elementary quantum computing elements. Here...
Unlike fixed designs, programmable circuit designs support an infinite number of operators. The func...
Constructing appropriate unitary matrix operators for new quantum algorithms and finding the minimum...
Applications of the concepts of quantum information theory are usually related to the powerful and c...
The design of new materials and chemicals derived entirely from computation has long been a goal of ...
Quantum computation is based on implementing selected unitary transformations which represent algori...
We give three methods for entangling quantum states in quantum dots. We do this by showing how to ta...
Regulating energy transfer pathways through materials is a central goal of nanotechnology, as a grea...
Computing on the (sub) nanoscale is discussed and illustrated by a specific example of charge transf...
International audienceQuantum Hamiltonian Computing is a recent approach that uses quantum systems, ...
We numerically investigate the implementation of small quantum algorithms, an arithmetic adder and t...
Quantum computation promises to solve fundamental, yet otherwise intractable, problems across a rang...
Quantum computation has attracted much attention, among other things, due to its potentialities to s...
Molecular logic gates (MLG) are molecules which perform logic operations. Their integration into a c...