spin coherence
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2022 ◽  
Vol 17 (1) ◽  
Author(s):  
Brian J. McMahon ◽  
Brian C. Sawyer
Keyword(s):  

2022 ◽  
Vol 130 (1) ◽  
pp. 23
Author(s):  
Eloise Lafitte-Houssat ◽  
Alban Ferrier ◽  
Mikael Afzelius ◽  
Perrine Berger ◽  
Loic Morvan ◽  
...  

Rare earth ions are actively investigated as optically addressable spin systems for quantum technologies thanks to their long optical and spin coherence lifetimes. 171Yb3+, which has 1/2 electron and nuclear spins, recently raised interest for its simple hyperfine structure that moreover can result in long coherence lifetimes at zero magnetic field, an unusual property for paramagnetic rare earth ions. Here, we report on the optical inhomogeneous and homogeneous linewidths in 171Yb3+:Y2SiO5 (site 2) for different doping concentrations. While inhomogeneous linewidth is not correlated to 171Yb3+ concentration, the homogeneous one strongly decreases between 10 and 2 ppm doping level, reaching 255 Hz at 3 K. This is attributed to a slowing down of 171Yb3+ ground state spin flip-flops.


2021 ◽  
Vol 7 (51) ◽  
Author(s):  
Marianne Le Dantec ◽  
Miloš Rančić ◽  
Sen Lin ◽  
Eric Billaud ◽  
Vishal Ranjan ◽  
...  

2021 ◽  
Vol 3 (4) ◽  
Author(s):  
Maheswar Swar ◽  
Dibyendu Roy ◽  
Subhajit Bhar ◽  
Sanjukta Roy ◽  
Saptarishi Chaudhuri

Quantum ◽  
2021 ◽  
Vol 5 ◽  
pp. 565
Author(s):  
Cathryn P. Michaels ◽  
Jesús Arjona Martínez ◽  
Romain Debroux ◽  
Ryan A. Parker ◽  
Alexander M. Stramma ◽  
...  

Photonic cluster states are a powerful resource for measurement-based quantum computing and loss-tolerant quantum communication. Proposals to generate multi-dimensional lattice cluster states have identified coupled spin-photon interfaces, spin-ancilla systems, and optical feedback mechanisms as potential schemes. Following these, we propose the generation of multi-dimensional lattice cluster states using a single, efficient spin-photon interface coupled strongly to a nuclear register. Our scheme makes use of the contact hyperfine interaction to enable universal quantum gates between the interface spin and a local nuclear register and funnels the resulting entanglement to photons via the spin-photon interface. Among several quantum emitters, we identify the silicon-29 vacancy centre in diamond, coupled to a nanophotonic structure, as possessing the right combination of optical quality and spin coherence for this scheme. We show numerically that using this system a 2×5-sized cluster state with a lower-bound fidelity of 0.5 and repetition rate of 65 kHz is achievable under currently realised experimental performances and with feasible technical overhead. Realistic gate improvements put 100-photon cluster states within experimental reach.


2021 ◽  
Author(s):  
Tomas Jungwirth ◽  
Libor Šmejkal ◽  
Jairo Sinova

Abstract The search for novel magnetic quantum phases, phenomena and functional materials has been guided by relativistic magnetic-symmetry groups in coupled spin and real space from the dawn of the field in 1950s to the modern era of topological matter. However, the magnetic groups cannot disentangle non-relativistic phases and effects, such as the recently reported unconventional spin physics in collinear antiferromagnets, from the typically weak relativistic spin-orbit coupling phenomena. Here we discover that more general spin symmetries in decoupled spin and crystal space categorize non-relativistic collinear magnetism in three phases: conventional ferromagnets and antiferromangets, and a third distinct phase combining zero net magnetization with an alternating spin-momentum locking in energy bands, which we dub "altermagnetic". For this third basic magnetic phase, which is omitted by the relativistic magnetic groups, we develop a spin-group theory describing six characteristic types of the altermagnetic spin-momentum locking. We demonstrate an extraordinary spin-splitting mechanism in altermagnetic bands originating from a local electric crystal field, which contrasts with the conventional magnetic or relativistic splitting by global magnetization or inversion asymmetry. Based on first-principles calculations, we identify altermagnetic candidates ranging from insulators and metals to a parent crystal of cuprate superconductor. Our results underpin emerging research of quantum phases and spintronics in high-temperature magnets with light elements, vanishing net magnetization, and strong spin-coherence.


2021 ◽  
Vol 7 (1) ◽  
Author(s):  
Ruihuan Fang ◽  
Chengyin Han ◽  
Xunda Jiang ◽  
Yuxiang Qiu ◽  
Yuanyuan Guo ◽  
...  

AbstractRamsey spectroscopy via coherent population trapping (CPT) is essential in precision measurements. The conventional CPT-Ramsey fringes contain numbers of almost identical oscillations and so that it is difficult to identify the central fringe. Here we experimentally demonstrate a temporal analog of Fabry–Pérot resonator via double-Λ CPT of laser-cooled 87Rb atoms. By inserting a periodic CPT pulse train between the two CPT-Ramsey pulses, due to the constructive interference of spin coherence, the transmission spectrum appears as a comb of equidistant peaks in frequency domain and thus the central Ramsey fringe can be easily identified. From the five-level Bloch equations for our double-Λ system, we find that the multi-pulse CPT interference can be regarded as a temporal analog of Fabry–Pérot resonator. Because of the small amplitude difference between the two Landé g factors, each peak splits into two when the external magnetic field is not too weak. This splitting is exactly linear with the magnetic field strength and thus can be used for measuring a magnetic field without involving magneto-sensitive transitions.


2021 ◽  
Vol 104 (3) ◽  
Author(s):  
Ugne Dargyte ◽  
David M. Lancaster ◽  
Jonathan D. Weinstein

2021 ◽  
Vol 104 (12) ◽  
Author(s):  
Wu-Xi Lin ◽  
Fei-Fei Yan ◽  
Qiang Li ◽  
Jun-feng Wang ◽  
Zhi-He Hao ◽  
...  

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