We suggest a simple method to engineer a tight-binding quantum network based on proper coupling to an auxiliary non-Hermitian cluster. In particular, it is shown that effective complex non-Hermitian hopping rates can be realized with only complex onsite energies in the network. Three applications of the Hamiltonian engineering method are presented: the synthesis of a nearly transparent defect in an Hermitian linear lattice; the realization of the Fano-Anderson model with complex coupling; and the synthesis of a PT-symmetric tight-binding lattice with a bound state in the continuum
Motivated by recent progress on non-Hermitian topological band theories, we study the energy spectru...
Topological phenomena known from solid state physics have been transferred to a variety of other cla...
A nonadiabatic and robust method of excitation transfer in a non-Hermitian tight-binding linear chai...
We suggest a simple method to engineer a tight-binding quantum network based on proper coupling to a...
We investigate the validity of the non-Hermitian Hamiltonian approach in describing quantum transpor...
In this pro ject, we devise a technique to simulate tight-binding lattices of infinite size with cir...
Flat bands-dispersionless bands-have been actively studied thanks to their sensitivity to perturbati...
The scope of this thesis is analyzing and characterizing certain gapless states in tight-binding non...
We consider non-Hermitian dynamics of a quantum particle hopping on a one-dimensional tight-binding ...
The energy bands of non-Hermitian systems exhibit nontrivial topological features that arise from th...
We propose a method for Hamiltonian engineering that requires no local control but only relies on co...
We show that the bulk-boundary correspondence for topological insulators can be modified in the pres...
Motivated by recent progress on non-Hermitian topological band theories, we study the energy spectru...
Topological phenomena known from solid state physics have been transferred to a variety of other cla...
A nonadiabatic and robust method of excitation transfer in a non-Hermitian tight-binding linear chai...
We suggest a simple method to engineer a tight-binding quantum network based on proper coupling to a...
We investigate the validity of the non-Hermitian Hamiltonian approach in describing quantum transpor...
In this pro ject, we devise a technique to simulate tight-binding lattices of infinite size with cir...
Flat bands-dispersionless bands-have been actively studied thanks to their sensitivity to perturbati...
The scope of this thesis is analyzing and characterizing certain gapless states in tight-binding non...
We consider non-Hermitian dynamics of a quantum particle hopping on a one-dimensional tight-binding ...
The energy bands of non-Hermitian systems exhibit nontrivial topological features that arise from th...
We propose a method for Hamiltonian engineering that requires no local control but only relies on co...
We show that the bulk-boundary correspondence for topological insulators can be modified in the pres...
Motivated by recent progress on non-Hermitian topological band theories, we study the energy spectru...
Topological phenomena known from solid state physics have been transferred to a variety of other cla...
A nonadiabatic and robust method of excitation transfer in a non-Hermitian tight-binding linear chai...