We present an overview of Majorana qubits based on one-dimensional semiconducting nanowires partially covered with a conventional superconductor. Majorana zero modes emerge at the wire ends when this hybrid system transitions from a conventional superconducting phase to a topological phase, in general occurring on increasing a magnetic field. For sufficiently long wires different Majoranas are fully independent and Majorana-based qubit states become topologically protected, which make them insensitive to local sources of noise. We present qubit designs, materials and device development and ongoing experimental efforts.</p
We introduce a scheme for preparation, manipulation, and read out of Majorana zero modes in semicond...
Majorana bound states are topological states predicated in condensed matter physics. These states ob...
Among the major avenues that are being pursued for realizing quantum bits, the Majorana-based approa...
We present an overview of Majorana qubits based on one-dimensional semiconducting nanowires partiall...
We present an overview of Majorana qubits based on one-dimensional semiconducting nanowires partiall...
In the voyage towards solving increasingly challenging computations of physical systems, quantum com...
A quantum computer can outperform classical computers for certain tasks. The general challenge to re...
After a century from the quantum description of nature, the scientific community has laid the basis ...
A quantum computer can outperform classical computers for certain tasks. The general challenge to re...
A quantum computer can outperform classical computers for certain tasks. The general challenge to re...
A quantum computer can outperform classical computers for certain tasks. The general challenge to re...
We describe designs for the realization of topological Majorana qubits in terms of proximitized topo...
By exploiting quantum mechanics, quantum computers are able to solve problems---for example in quant...
We introduce a scheme for preparation, manipulation, and read out of Majorana zero modes in semicond...
Quantum computers can solve some problems exponentially faster than classical computers. Unfortunate...
We introduce a scheme for preparation, manipulation, and read out of Majorana zero modes in semicond...
Majorana bound states are topological states predicated in condensed matter physics. These states ob...
Among the major avenues that are being pursued for realizing quantum bits, the Majorana-based approa...
We present an overview of Majorana qubits based on one-dimensional semiconducting nanowires partiall...
We present an overview of Majorana qubits based on one-dimensional semiconducting nanowires partiall...
In the voyage towards solving increasingly challenging computations of physical systems, quantum com...
A quantum computer can outperform classical computers for certain tasks. The general challenge to re...
After a century from the quantum description of nature, the scientific community has laid the basis ...
A quantum computer can outperform classical computers for certain tasks. The general challenge to re...
A quantum computer can outperform classical computers for certain tasks. The general challenge to re...
A quantum computer can outperform classical computers for certain tasks. The general challenge to re...
We describe designs for the realization of topological Majorana qubits in terms of proximitized topo...
By exploiting quantum mechanics, quantum computers are able to solve problems---for example in quant...
We introduce a scheme for preparation, manipulation, and read out of Majorana zero modes in semicond...
Quantum computers can solve some problems exponentially faster than classical computers. Unfortunate...
We introduce a scheme for preparation, manipulation, and read out of Majorana zero modes in semicond...
Majorana bound states are topological states predicated in condensed matter physics. These states ob...
Among the major avenues that are being pursued for realizing quantum bits, the Majorana-based approa...