In light matter interfaces based on the Faraday effect quite a number of quantum information protocols have been successfully demonstrated. In order to further increase the performance and fidelities achieved in these protocols a deeper understanding of the relevant noise and decoherence processes needs to be gained. In this article we provide for the first time a complete description of the decoherence from spontaneous emission. We derive from first principles the effects of photons being spontaneously emitted into unobserved modes. Our results relate the resulting decay and noise terms in effective equations of motion for collective atomic spins and the forward propagating light modes to the full atomic level structure. We illustrate and ...
Abstract. We discuss decoherence in discrete-time quantum walks in terms of a phenomenological model...
Decoherence is the main process behind the quantum to classical transition. It is a purely quantum m...
Quantum communication theory sets the maximum rates at which information can be encoded and decoded ...
In light matter interfaces based on the Faraday effect quite a number of quantum information protoco...
The relevance of quantum noise in the coherent light field dynamics of semiconductor devices is inve...
doi:10.1088/1367-2630/11/2/025002 Abstract. The efficiency of the future devices for quantum informa...
With increasing communication rates via quantum channels, memory effects become unavoidable whenever...
During the past decade the interaction of light with multi-atom ensembles has attracted a lot of att...
The notion of an atom-light quantum interface has been developed in the past decade, to a large exte...
We review our recent contributions to two topics that have become of interest in the field of open, ...
This article reviews recent research towards a universal light-matter interface. Such an interface i...
Quantum information science is a rapidly growing research area for that it provides new insights to ...
We propose a quantum memory protocol where an input light field can be stored onto and released from...
We introduce a general model describing correlated noise effects in quantum optical communication vi...
A quantum state of light is characterized by its statistics of number of photons. These statistics c...
Abstract. We discuss decoherence in discrete-time quantum walks in terms of a phenomenological model...
Decoherence is the main process behind the quantum to classical transition. It is a purely quantum m...
Quantum communication theory sets the maximum rates at which information can be encoded and decoded ...
In light matter interfaces based on the Faraday effect quite a number of quantum information protoco...
The relevance of quantum noise in the coherent light field dynamics of semiconductor devices is inve...
doi:10.1088/1367-2630/11/2/025002 Abstract. The efficiency of the future devices for quantum informa...
With increasing communication rates via quantum channels, memory effects become unavoidable whenever...
During the past decade the interaction of light with multi-atom ensembles has attracted a lot of att...
The notion of an atom-light quantum interface has been developed in the past decade, to a large exte...
We review our recent contributions to two topics that have become of interest in the field of open, ...
This article reviews recent research towards a universal light-matter interface. Such an interface i...
Quantum information science is a rapidly growing research area for that it provides new insights to ...
We propose a quantum memory protocol where an input light field can be stored onto and released from...
We introduce a general model describing correlated noise effects in quantum optical communication vi...
A quantum state of light is characterized by its statistics of number of photons. These statistics c...
Abstract. We discuss decoherence in discrete-time quantum walks in terms of a phenomenological model...
Decoherence is the main process behind the quantum to classical transition. It is a purely quantum m...
Quantum communication theory sets the maximum rates at which information can be encoded and decoded ...