We investigate the non-Markovian quantum dynamics of a hybrid open system consisting of one qubit and one qutrit by employing a stochastic Schrödinger equation to generate diffusive quantum trajectories. We have established an exact quantum state diffusion (QSD) equation for the dissipative qubit-qutrit system coupled to a bosonic heat bath at zero temperature. As an important application, the non-Markovian QSD equation is employed to simulate the entanglement decay and generation measured by negativity. Finally, some steady-state properties of the hybrid system are also discussed
<p><strong>Figure 5.</strong> Fidelity evolution of the single-qutrit dissipative model under contro...
3noWe consider two qubits interacting with a common bosonic bath, but not directly between themselve...
We provide a thorough analysis of the entanglement dynamics of an interacting two-qubit system in th...
A nonlinear stochastic Schrödinger equation for pure states describing non-Markovian diffusion of qu...
We present a nonlinear stochastic Schroedinger equation for pure states describing non-Markovian dif...
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...
The non-Markovian nature of quantum systems recently turned to be a key subject for investigations o...
We develop a systematic and efficient approach for numerically solving the non-Markovian quantum sta...
<p><strong>Figure 6.</strong> Fidelity time evolution of a single-qutrit dissipative model with the ...
The non-Markovian generalization of a stochastic Schrödinger equation of diffusion type is considere...
We provide the exact analytic solution of the stochastic Schroedinger equation describing a harmonic...
We introduce an exact open system method to describe the dynamics of quantum systems that are strong...
<p><strong>Figure 5.</strong> Fidelity evolution of the single-qutrit dissipative model under contro...
3noWe consider two qubits interacting with a common bosonic bath, but not directly between themselve...
We provide a thorough analysis of the entanglement dynamics of an interacting two-qubit system in th...
A nonlinear stochastic Schrödinger equation for pure states describing non-Markovian diffusion of qu...
We present a nonlinear stochastic Schroedinger equation for pure states describing non-Markovian dif...
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...
The non-Markovian nature of quantum systems recently turned to be a key subject for investigations o...
We develop a systematic and efficient approach for numerically solving the non-Markovian quantum sta...
<p><strong>Figure 6.</strong> Fidelity time evolution of a single-qutrit dissipative model with the ...
The non-Markovian generalization of a stochastic Schrödinger equation of diffusion type is considere...
We provide the exact analytic solution of the stochastic Schroedinger equation describing a harmonic...
We introduce an exact open system method to describe the dynamics of quantum systems that are strong...
<p><strong>Figure 5.</strong> Fidelity evolution of the single-qutrit dissipative model under contro...
3noWe consider two qubits interacting with a common bosonic bath, but not directly between themselve...
We provide a thorough analysis of the entanglement dynamics of an interacting two-qubit system in th...