Mojtaba Ghadimi

Ultrafast coherent excitation of an Ytterbium ion with single laser pulses

Kenji Shimizu [1], Jordan Scarabel [1], Elizabeth Bridge [2], Steven Connell [1], Mojtaba Ghadimi, Ben Haylock [1], Mahmood Irtiza Hussain [3,4], Erik Streed [1,5], Mirko Lobino [1,6]

Abstract

Experimental realizations of two qubit entangling gates with trapped ions typically rely on addressing spectroscopically resolved motional sidebands, limiting gate speed to the secular frequency. Fast entangling gates using ultrafast pulsed lasers overcome this speed limit. This approach is based on state-dependent photon recoil kicks from a sequence of counter-propagating, resonant, ultrafast pulse pairs, which can allow sub-microsecond gate speeds. Here we demonstrate a key component of the ultrafast gate protocol, the coherent excitation of a 171Yb+ ion across the 2S1/2-2P1/2 transition with a single near-resonant short optical pulse at 369.53 nm. We achieve a maximum population transfer of 94.3(6)% using a picosecond pulsed laser that can be tuned across the 2S1/2-2P1/2 transition, and 42.53(13)% with 190(7) GHz detuning.

Ion-Photonic Frequency Qubit Correlations for Quantum Networks

Steven C. Connell [1], Jordan Scarabel [1], Elizabeth M. Bridge [1], Kenji Shimizu [1], Valdis Blums, Mojtaba Ghadimi [1], Mirko Lobino [1,2], Erik W. Streed [1,3]

Abstract

Efficiently scaling quantum networks to long ranges requires local processing nodes to perform basic computation and communication tasks. Trapped ions have demonstrated all the properties required for the construction of such a node, storing quantum information for up to 12 minutes, implementing deterministic high fidelity logic operations on one and two qubits, and ion-photon coupling. While most ions suitable for quantum computing emit photons in visible to near ultraviolet (UV) frequency ranges poorly suited to long-distance fibre optical based networking, recent experiments in frequency conversion provide a technological solution by shifting the photons to frequencies in the telecom band with lower attenuation for fused silica fibres. Encoding qubits in frequency rather than polarization makes them more robust against decoherence from thermal or mechanical noise due to the conservation of energy. To date, ion-photonic frequency qubit entanglement has not been directly shown. Here we demonstrate a frequency encoding ion-photon entanglement protocol in $^{171}$Yb$^+$ with correlations equivalent to 92.4(8)% fidelity using a purpose-built UV hyperfine spectrometer. The same robustness against decoherence precludes our passive optical setup from rotating photonic qubits to unconditionally demonstrate entanglement, however it is sufficient to allow us to benchmark the quality of ion-UV photon correlations prior to frequency conversion to the telecom band.