The ability to control spins in semiconductors is important in a variety of fields, including spintronics and quantum information processing. Due to the potentially fast dephasing times of spins in the solid state(1-3), spin control operating on the picosecond timescale, or faster, may be necessary. Such speeds-which are not possible to reach with standard electron spin resonance techniques based on microwave sources-can be attained with broadband optical pulses. One promising ultrafast technique uses single broadband pulses detuned from resonance in a three-level Lambda system(4). This technique is robust against optical-pulse imperfections and does not require a fixed optical reference phase. Here we demonstrate, theoretically and experim...
Quantum computation holds the promise of efficient solutions to currently formidable problems. A pro...
The representation of information within the spins of electrons and nuclei has been a powerful metho...
Trapped atomic ions are a promising medium for quantum computing, due to their long coherence times ...
Spin-based quantum computing and magnetic resonance techniques rely on the ability to measure the co...
xvii, 110 p. : ill. (some col.)Electron spin states in semiconductors feature long coherence lifetim...
This article gives an overview on recent theoretical progress in controlling the charge and spin dyn...
This article gives an overview on recent theoretical progress in controlling the charge and spin dyn...
Abstract: Quantum control of solid-state spin qubits typically involves pulses in the microwave doma...
xvi, 143 p. : ill. (some col.)Electron spins form a two-level quantum system in which the remarkable...
We have studied theoretically the possibility of ultra-fast manipulation of a single electron spin i...
We demonstrated coherent control of a quantum two-level system based on two-electron spin states in ...
We demonstrated coherent control of a quantum two-level system based on two-electron spin states in ...
As conventional electronics approaches its fundamental limits, novel concepts of ultrafast quantum c...
Coherent manipulation of quantum bits (qubits) on time scales much shorter than the coherence time 1...
We use gate voltage control of the exchange interaction to prepare, manipulate, and measure two-elec...
Quantum computation holds the promise of efficient solutions to currently formidable problems. A pro...
The representation of information within the spins of electrons and nuclei has been a powerful metho...
Trapped atomic ions are a promising medium for quantum computing, due to their long coherence times ...
Spin-based quantum computing and magnetic resonance techniques rely on the ability to measure the co...
xvii, 110 p. : ill. (some col.)Electron spin states in semiconductors feature long coherence lifetim...
This article gives an overview on recent theoretical progress in controlling the charge and spin dyn...
This article gives an overview on recent theoretical progress in controlling the charge and spin dyn...
Abstract: Quantum control of solid-state spin qubits typically involves pulses in the microwave doma...
xvi, 143 p. : ill. (some col.)Electron spins form a two-level quantum system in which the remarkable...
We have studied theoretically the possibility of ultra-fast manipulation of a single electron spin i...
We demonstrated coherent control of a quantum two-level system based on two-electron spin states in ...
We demonstrated coherent control of a quantum two-level system based on two-electron spin states in ...
As conventional electronics approaches its fundamental limits, novel concepts of ultrafast quantum c...
Coherent manipulation of quantum bits (qubits) on time scales much shorter than the coherence time 1...
We use gate voltage control of the exchange interaction to prepare, manipulate, and measure two-elec...
Quantum computation holds the promise of efficient solutions to currently formidable problems. A pro...
The representation of information within the spins of electrons and nuclei has been a powerful metho...
Trapped atomic ions are a promising medium for quantum computing, due to their long coherence times ...