We develop a systematic and efficient approach for numerically solving the non-Markovian quantum state diffusion equation for an open quantum system that can be strongly coupled to an environment. As an important application, we consider a real-time simulation of a spin-boson model in a strong-coupling regime that is difficult to deal with using conventional methods. We show that the non-Markovian stochastic Schrodinger equation can be efficiently implemented as a real-time simulation for this model, so as to give an accurate description of spin-boson dynamics beyond the rotating-wave approximation.Department of Applied Physic
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...
We introduce an exact open system method to describe the dynamics of quantum systems that are strong...
The exact dynamics of a system coupled to an environment can be described by an integro-differential...
The exact dynamics of a system coupled to an environment can be described by an integro-differential...
The exact dynamics of a system coupled to an environment can be described by an integro-differential...
The exact dynamics of a system coupled to an environment can be described by an integro-differential...
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...
Strong coupling between a system and its environment leads to the emergence of non-Markovian dynamic...
Strong coupling between a system and its environment leads to the emergence of non-Markovian dynamic...
We introduce an exact open system method to describe the dynamics of quantum systems that are strong...
Strong coupling between a system and its environment leads to the emergence of non-Markovian dynamic...
Funders: Strathearn - EPSRC, ID: EP/L505079/1, Lovett - EPSRC, ID: EP/K025562/1, Kirton- EPSRC, ID: ...
We present a nonlinear stochastic Schroedinger equation for pure states describing non-Markovian dif...
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...
We introduce an exact open system method to describe the dynamics of quantum systems that are strong...
The exact dynamics of a system coupled to an environment can be described by an integro-differential...
The exact dynamics of a system coupled to an environment can be described by an integro-differential...
The exact dynamics of a system coupled to an environment can be described by an integro-differential...
The exact dynamics of a system coupled to an environment can be described by an integro-differential...
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...
Strong coupling between a system and its environment leads to the emergence of non-Markovian dynamic...
Strong coupling between a system and its environment leads to the emergence of non-Markovian dynamic...
We introduce an exact open system method to describe the dynamics of quantum systems that are strong...
Strong coupling between a system and its environment leads to the emergence of non-Markovian dynamic...
Funders: Strathearn - EPSRC, ID: EP/L505079/1, Lovett - EPSRC, ID: EP/K025562/1, Kirton- EPSRC, ID: ...
We present a nonlinear stochastic Schroedinger equation for pure states describing non-Markovian dif...
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...
In order to model realistic quantum devices it is necessary to simulate quantum systems strongly cou...