Quantum computers could potentially simulate the dynamics of systems such as polyatomic molecules on a much larger scale than classical computers. We investigate a general quantum computational algorithm that simulates the time evolution of an arbitrary non-relativistic, Coulombic many-body system in three dimensions, consider-ing only spatial degrees of freedom. We use a simple discretized model of Schrödinger evolution and discuss detailed constructions of the operators necessary to realize the scheme of Wiesner and Zalka. The algorithm is simulated numerically for small test cases, and its outputs are found to be in good agreement with analytical solutions.
Quantum computers are built directly from units that follow the laws of quantum mechanics. This allo...
This thesis discusses the application of numerical methods to different complex quantum systems. I ...
The simple algorithm for the simulation and visualization of non relativistic quantum dynamics is pr...
this paper we will discuss algorithms which are concrete realizations of these general arguments. Th...
We present a numerical method to simulate the time evolution, according to a Hamiltonian made of loc...
Algorithmic approach is based on the assumption that any quantum evolution of many particle system c...
A general class of discrete unitary models are described whose behavior in the continuum limit corre...
An algorithm for the simulation of quantum-classical dynamics is presented. Quantum-classical evolut...
Variational quantum algorithms have been proposed to solve static and dynamic problems of closed man...
We present a numerical method to simulate the time evolution, according to a generic Hamiltonian mad...
Coupled quantum electron–nuclear dynamics is often associated with the Born–Huang expansion of the m...
Simulating time evolution of generic quantum many-body systems using classical numerical approaches ...
Numerical techniques have become powerful tools for studying quantum systems. Eventually, quantum co...
Quantum simulation is a prominent application of quantum computers. While there is extensive previou...
We consider computational methods for simulating the dynamics of molecular systems governed by the t...
Quantum computers are built directly from units that follow the laws of quantum mechanics. This allo...
This thesis discusses the application of numerical methods to different complex quantum systems. I ...
The simple algorithm for the simulation and visualization of non relativistic quantum dynamics is pr...
this paper we will discuss algorithms which are concrete realizations of these general arguments. Th...
We present a numerical method to simulate the time evolution, according to a Hamiltonian made of loc...
Algorithmic approach is based on the assumption that any quantum evolution of many particle system c...
A general class of discrete unitary models are described whose behavior in the continuum limit corre...
An algorithm for the simulation of quantum-classical dynamics is presented. Quantum-classical evolut...
Variational quantum algorithms have been proposed to solve static and dynamic problems of closed man...
We present a numerical method to simulate the time evolution, according to a generic Hamiltonian mad...
Coupled quantum electron–nuclear dynamics is often associated with the Born–Huang expansion of the m...
Simulating time evolution of generic quantum many-body systems using classical numerical approaches ...
Numerical techniques have become powerful tools for studying quantum systems. Eventually, quantum co...
Quantum simulation is a prominent application of quantum computers. While there is extensive previou...
We consider computational methods for simulating the dynamics of molecular systems governed by the t...
Quantum computers are built directly from units that follow the laws of quantum mechanics. This allo...
This thesis discusses the application of numerical methods to different complex quantum systems. I ...
The simple algorithm for the simulation and visualization of non relativistic quantum dynamics is pr...