We present a theoretical proposal for the implementation of geometric quantum computing based on a Hamiltonian which has a doubly degenerate ground state. Thus the system which is steered adiabatically, remains in the ground-state. The proposed physical implementation relies on a superconducting circuit composed of three SQUIDs and two superconducting islands with the charge states encoding the logical states. We obtain a universal set of single-qubit gates and implement a nontrivial two-qubit gate exploiting the mutual inductance between two neighboring circuits, allowing us to realize a fully geometric ground-state quantum computing. The introduced paradigm for the implementation of geometric quantum computing is expected to be robust aga...
Reliable quantum information processing requires high-fidelity universal manipulation of quantum sys...
Quantum computing in terms of geometric phases, i.e. Berry or Aharonov-Anandan phases, is fault-tole...
To reach the error threshold required to successfully perform error-correcting algorithms in quantum...
We suggest a scheme to implement a universal set of non-Abelian geometric transformations for a sing...
We propose a new class of unconventional geometric gates involving nonzero dynamic phases, and eluci...
The quest for large scale integrability and flexibility has stimulated an increasing interest in des...
We present an adiabatic geometric quantum computation strategy based on the non-degenerate energy ei...
Qubits (quantum bits) are what runs quantum computers, like a bit in classical computers. Quantum ga...
We propose a scheme to implement quantum computation in decoherence-free subspace with superconducti...
A practical quantum computer must be capable of performing high fidelity quantum gates on a set of q...
We consider how the Hamiltonian Quantum Computing scheme introduced in (2016 New J. Phys. 18 023042)...
We investigate the ground state properties of a system containing two superconducting islands couple...
One of the major challenges hindering advancement of quantum computing is the sensitive nature of th...
Experimental realization of a universal set of quantum logic gates is the central requirement for im...
We describe in detail a general strategy for implementing a conditional geometric phase between two ...
Reliable quantum information processing requires high-fidelity universal manipulation of quantum sys...
Quantum computing in terms of geometric phases, i.e. Berry or Aharonov-Anandan phases, is fault-tole...
To reach the error threshold required to successfully perform error-correcting algorithms in quantum...
We suggest a scheme to implement a universal set of non-Abelian geometric transformations for a sing...
We propose a new class of unconventional geometric gates involving nonzero dynamic phases, and eluci...
The quest for large scale integrability and flexibility has stimulated an increasing interest in des...
We present an adiabatic geometric quantum computation strategy based on the non-degenerate energy ei...
Qubits (quantum bits) are what runs quantum computers, like a bit in classical computers. Quantum ga...
We propose a scheme to implement quantum computation in decoherence-free subspace with superconducti...
A practical quantum computer must be capable of performing high fidelity quantum gates on a set of q...
We consider how the Hamiltonian Quantum Computing scheme introduced in (2016 New J. Phys. 18 023042)...
We investigate the ground state properties of a system containing two superconducting islands couple...
One of the major challenges hindering advancement of quantum computing is the sensitive nature of th...
Experimental realization of a universal set of quantum logic gates is the central requirement for im...
We describe in detail a general strategy for implementing a conditional geometric phase between two ...
Reliable quantum information processing requires high-fidelity universal manipulation of quantum sys...
Quantum computing in terms of geometric phases, i.e. Berry or Aharonov-Anandan phases, is fault-tole...
To reach the error threshold required to successfully perform error-correcting algorithms in quantum...