Daniel Cohen

Cavity-mediated cross-cross-resonance gate

Alexey V. Gorshkov [1], Daniel Cohen [1], Arbel Haim [1], Amit Rotem [1], Or Golan [1], Gihwan Kim [1,2,3], Andreas Butler [1,2,3], Connor T. Hann [1], Oskar Painter [1], Fernando G. S. L. Brandão, Alex Retzker [1,4]

Abstract

We propose a cavity-mediated gate between two transmon qubits or other nonlinear superconducting elements. The gate is realized by driving both qubits at a frequency that is near-resonant with the frequency of the cavity. Since both qubits are subject to a cross-resonant drive, we call this gate a cross-cross-resonance gate. In close analogy with gates between trapped-ion qubits, in phase space, the state of the cavity makes a circle whose area depends on the state of the two qubits, realizing a controlled-phase gate. We propose two schemes for canceling the dominant error, which is the dispersive coupling. We also show that this cross-cross-resonance gate allows one to realize simultaneous gates between multiple pairs of qubits coupled via the same metamaterial composed of an array of coupled cavities or other linear mediators.

Fast, robust and laser-free universal entangling gates for trapped-ion quantum computing

Markus Nünnerich, Daniel Cohen [2], Patrick Barthel [1], Patrick H. Huber [1], Dorna Niroomand [1], Alex Retzker [2,3], Christof Wunderlich [1,4]

Abstract

A novel two-qubit entangling gate for trapped-ion quantum processors is proposed theoretically and demonstrated experimentally. During the gate, double-dressed quantum states are created by applying a phase-modulated continuous driving field. The speed of this quantum gate is an order of magnitude higher than that of previously demonstrated rf controlled two-qubit entangling gates in static magnetic field gradients. At the same time, the field driving the gate dynamically decouples the qubits from amplitude and frequency noise, increasing the qubits' coherence time by $3$ orders of magnitude. The gate requires only a single continuous rf field per qubit, making it well suited for scaling a quantum processor to large numbers of qubits. Implementing this entangling gate, we generate the Bell states $|Φ^+\rangle$ and $|Ψ^+\rangle$ in less than or equal to $313$ $\mathrmμ$s with fidelities up to $98^{+2}_{-3}$% in a static magnetic gradient of only $19.09$ T/m. At higher magnetic field gradients, the entangling gate speed can be further improved to match that of laser-based counterparts.

Refocusing two qubit gates with measurements for trapped ions

Tuvia Gefen [1], Daniel Cohen [1], Itsik Cohen [1], Alex Retzker [1]

Abstract

Dynamical decoupling techniques are the method of choice for increasing gate fidelities. While these methods have produced very impressive results in terms of decreasing local noise and increasing the fidelities of single qubit operations, dealing with the noise of two qubit gates has proven more challenging. The main obstacle is that the noise time scale is shorter than the two qubit gate itself so that refocusing methods do not work. We present a measurement and feedback based method to refocus two qubit gates which cannot be refocused by conventional methods. We analyze in detail this method for an error model which is relevant for trapped ions quantum information.