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2022 ◽  
Vol 13 (1) ◽  
Author(s):  
Ke Wang ◽  
Gang Xu ◽  
Fei Gao ◽  
He Liu ◽  
Rong-Long Ma ◽  
...  

AbstractOperation speed and coherence time are two core measures for the viability of a qubit. Strong spin-orbit interaction (SOI) and relatively weak hyperfine interaction make holes in germanium (Ge) intriguing candidates for spin qubits with rapid, all-electrical coherent control. Here we report ultrafast single-spin manipulation in a hole-based double quantum dot in a germanium hut wire (GHW). Mediated by the strong SOI, a Rabi frequency exceeding 540 MHz is observed at a magnetic field of 100 mT, setting a record for ultrafast spin qubit control in semiconductor systems. We demonstrate that the strong SOI of heavy holes (HHs) in our GHW, characterized by a very short spin-orbit length of 1.5 nm, enables the rapid gate operations we accomplish. Our results demonstrate the potential of ultrafast coherent control of hole spin qubits to meet the requirement of DiVincenzo’s criteria for a scalable quantum information processor.


2022 ◽  
Vol 105 (2) ◽  
Author(s):  
Pavel E. Dolgirev ◽  
Shubhayu Chatterjee ◽  
Ilya Esterlis ◽  
Alexander A. Zibrov ◽  
Mikhail D. Lukin ◽  
...  

2022 ◽  
Vol 4 (1) ◽  
Author(s):  
Shubhayu Chatterjee ◽  
Pavel E. Dolgirev ◽  
Ilya Esterlis ◽  
Alexander A. Zibrov ◽  
Mikhail D. Lukin ◽  
...  

2022 ◽  
Vol 258 ◽  
pp. 03002
Author(s):  
Hui Li ◽  
Xiaoyu Wang ◽  
Zhun Lu

We study the single-spin asymmetry ATsin(2ϕ−ϕS) in the pion-induced Drell-Yan process within the transverse momentum dependent factorization (TMD factorization). The asymmetry can be expressed as the convolution of the Boer-Mulders function and the transversity function. We numerically estimate the asymmetry ATsin(2ϕ−ϕS) at the COMPASS kinematics with the model results for the pion meson distributions from the light-cone wave function approach and the available parametrization for the proton distributions. We also include the TMD evolution formalism both proton and pion parton distribution functions by using two different parametrizations on nonperturbative Sudakov form factor. We find that the asymmetry ATsin(2ϕ−ϕS) as functions of xp, xπ, xF and q⊥ is qualitatively consistent with the recent COMPASS measurement.


Author(s):  
Felipe Barra ◽  
Karen Hovhannisyan ◽  
Alberto Imparato

Abstract Starting from the observation that the reduced state of a system strongly coupled to a bath is, in general, an athermal state, we introduce and study a cyclic battery-charger quantum device that is in thermal equilibrium, or in a ground state, during the charge storing stage. The cycle has four stages: the equilibrium storage stage is interrupted by disconnecting the battery from the charger, then work is extracted from the battery, and then the battery is reconnected with the charger; finally, the system is brought back to equilibrium. At no point during the cycle are the battery-charger correlations artificially erased. We study the case where the battery and charger together comprise a spin-1/2 Ising chain, and show that the main characteristics - the extracted energy and the thermodynamic efficiency - can be enhanced by operating the cycle close to the quantum phase transition point. When the battery is just a single spin, we find that the output work and efficiency show a scaling behavior at criticality and derive the corresponding critical exponents. Due to always present correlations between the battery and the charger, operations that are equivalent from the perspective of the battery can entail different energetic costs for switching the battery-charger coupling. This happens only when the coupling term does not commute with the battery's bare Hamiltonian, and we use this purely quantum leverage to further optimize the performance of the device.


2021 ◽  
Vol 104 (9) ◽  
Author(s):  
Sanjin Benić ◽  
Yoshitaka Hatta ◽  
Abhiram Kaushik ◽  
Hsiang-nan Li

Author(s):  
Yongfeng Tong ◽  
Massine Kelaï ◽  
Kaushik Bairagi ◽  
Vincent Repain ◽  
Jérôme Lagoute ◽  
...  

2021 ◽  
Vol 8 (11) ◽  
pp. 1679
Author(s):  
Khwairakpam Selina Devi ◽  
Akoijam Joy Singh ◽  
Longjam Nilachandra Singh ◽  
Kanti Rajkumari ◽  
Margaret Chabungbam ◽  
...  

Background: Osteoarthritis (OA) is condition characterised by progressive degeneration of joint cartilage, eventually leading to deformity of the joint. OA causes pain and disability and impacts on quality-of-life. Intra-articular platelet rich plasma gives favourable outcomes in OA knee; however, efficacy may be affected by method of preparation. Hence, this study comparing single spin and double spin platelet-rich plasma (PRP).Methods: A randomised controlled trial done among patients of OA who visited Department of Physical Medicine and Rehabilitation, Regional Institute of Medical Sciences, Imphal during August 2019-July 2021. Patients with OA knee having radiological findings of Kellgren Lawrence (KL) grade 2 and 3 (n=62) randomized into single spin PRP, (n=31) and double spin PRP, (n=31) groups and intra-articular PRP injection was given.Results: Baseline characteristics were not statistically significant. At the end of 1 week, improvement in mean difference of VAS was observe however not statistically significant (p=0.71). At end of 12 weeks and 24 weeks, there were statistically significant improvement in both mean difference of VAS (p=0.00) and WOMAC (p=0.002). Post intervention, out of the single spin PRP group, (64.51%, n=20) had complaints of adverse effects swelling, pain, redness whereas (6.45%, n=2) patients who received double spin PRP had adverse effects.Conclusions: Platelet rich plasma obtained by double spin method has long term improvement in both pain and function in patients with KL grade 2 and 3 OA knee than PRP from single spin method. Patient who received single spin PRP has more frequent post injection flare ups.


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.


Entropy ◽  
2021 ◽  
Vol 23 (10) ◽  
pp. 1333
Author(s):  
Peter A. Ivanov

I propose a quantum metrology protocol for measuring frequencies and weak forces based on a periodic modulating quantum Jahn–Teller system composed of a single spin and two bosonic modes. I show that, in the first order of the frequency drive, the time-independent effective Hamiltonian describes spin-dependent interaction between the two bosonic modes. In the limit of high-frequency drive and low bosonic frequency, the quantum Jahn–Teller system exhibits critical behavior which can be used for high-precision quantum estimation. A major advantage of the scheme is the robustness of the system against spin decoherence, which allows it to perform parameter estimation with measurement time not limited by spin dephasing.


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