We introduce a new design concept for superconducting phase quantum bits (qubits) in which we explicitly separate the capacitive element from the Josephson tunnel junction for improved qubit performance. The number of two-level systems that couple to the qubit is thereby reduced by an order of magnitude and the measurement fidelity improves to 90%. This improved design enables the first demonstration of quantum state tomography with superconducting qubits using single-shot measurements
We apply the method of compressed sensing (CS) quantum process tomography (QPT) to characterize quan...
Superconducting qubits have in recent years become a promising candidate for the implementation of a...
Experimental progress is reviewed for superconducting phase qubit research at the University of Cali...
We experimentally demonstrate quantum process tomography of controlled-Z and controlled-NOT gates us...
It is a challenge to identify the quantum state with high fidelity as the quantum system size become...
We demonstrate single-shot readout of quantum states of the Josephson charge qubit. The quantum bits...
Demonstration of quantum entanglement, a key resource in quantum computation arising from a nonclass...
Demonstration of quantum entanglement, a key resource in quantum computation arising from a nonclass...
In circuit-based quantum computing the available gate set typically consists of single-qubit gates a...
In this work we consider measurements on quantum systems emphasizingon read-out of superconducting q...
Measurement is one of the fundamental building blocks of quantum-information processing systems. Par...
Measurement is one of the fundamental building blocks of quantum-information processing systems. Par...
In this work we consider measurements on quantum systems emphasizing on read-out of superconducting ...
We apply the method of compressed sensing (CS) quantum process tomography (QPT) to characterize quan...
We apply the method of compressed sensing (CS) quantum process tomography (QPT) to characterize quan...
We apply the method of compressed sensing (CS) quantum process tomography (QPT) to characterize quan...
Superconducting qubits have in recent years become a promising candidate for the implementation of a...
Experimental progress is reviewed for superconducting phase qubit research at the University of Cali...
We experimentally demonstrate quantum process tomography of controlled-Z and controlled-NOT gates us...
It is a challenge to identify the quantum state with high fidelity as the quantum system size become...
We demonstrate single-shot readout of quantum states of the Josephson charge qubit. The quantum bits...
Demonstration of quantum entanglement, a key resource in quantum computation arising from a nonclass...
Demonstration of quantum entanglement, a key resource in quantum computation arising from a nonclass...
In circuit-based quantum computing the available gate set typically consists of single-qubit gates a...
In this work we consider measurements on quantum systems emphasizingon read-out of superconducting q...
Measurement is one of the fundamental building blocks of quantum-information processing systems. Par...
Measurement is one of the fundamental building blocks of quantum-information processing systems. Par...
In this work we consider measurements on quantum systems emphasizing on read-out of superconducting ...
We apply the method of compressed sensing (CS) quantum process tomography (QPT) to characterize quan...
We apply the method of compressed sensing (CS) quantum process tomography (QPT) to characterize quan...
We apply the method of compressed sensing (CS) quantum process tomography (QPT) to characterize quan...
Superconducting qubits have in recent years become a promising candidate for the implementation of a...
Experimental progress is reviewed for superconducting phase qubit research at the University of Cali...