Abstract Superconducting performance is tunable not only via chemical modification or defect engineering, but also through external parameters such as pressure, though this method remains less readily accessible. In this work, we study how compression influences vortex dynamics and critical currents in an iron-based superconductor. Specifically, we perform magnetization measurements using an off-the-shelf pressure cell to investigate the effects of hydrostatic pressures up to 1.08 GPa on the magnetic properties of BaFe (As P ) crystals across a range of temperatures and magnetic fields . Although these pressures minimally affect the superconducting critical temperature, they produce a clear increase in the critical current density , a pronounced reduction in the rate of thermally activated vortex motion , and can change the dominant vortex pinning mechanism. Furthermore, the effects of pressure are irreversible: after pressurization and subsequent release at room temperature, high-density microcracks are observed and the crystals retain their enhanced critical current densities. The second magnetization peak vanishes above 18 K after the pressure cycle, which we attribute to a transition from predominantly pinning to a mixed mechanism of and surface pinning. Lastly, a threefold increase in , a more than 40% reduction in at 8 K and 0.5 T, and an expanded elastic-creep region were achieved after pressure cycles. These findings demonstrate the potential utility of pressure cycling for improving , which may offer a simpler alternative compared to approaches such as chemical doping or the introduction of artificial pinning centers.
more »
« less
This content will become publicly available on May 1, 2027
Observation of a cross-section enhancement near the tt¯ production threshold in s=13 TeV pp collisions with the ATLAS detector
Abstract A measurement of production is presented in the invariant-mass region near the pair production threshold, GeV, in final states with two charged leptons and multiple jets. The measurement is based on of proton–proton collision data collected at TeV with the ATLAS detector at the Large Hadron Collider. The data are compared to two models of production: a baseline model including only perturbative quantum chromodynamics (pQCD) predictions for the hard process at approximate next-to-next-to leading order accuracy in the strong coupling, and an extended model that, in addition, incorporates non-relativistic QCD simulations that also include the formation of colour-singlet quasi-bound-states near the threshold. The agreement between the data and the models is quantified via a profile-likelihood fit to the reconstructed distributions, in bins of two angular observables sensitive to spin-correlations in the system. An excess of events is observed over the baseline pQCD prediction, with an observed significance over 8 standard deviations. This excess is consistent with the formation of colour-singlet and spin-singletS-wave quasi-bound states, as predicted by non-relativistic QCD, and corresponds to an observed cross-section of pb.
more »
« less
- Award ID(s):
- 2310094
- PAR ID:
- 10691829
- Publisher / Repository:
- IOP
- Date Published:
- Journal Name:
- Reports on Progress in Physics
- Volume:
- 89
- Issue:
- 5
- ISSN:
- 0034-4885
- Page Range / eLocation ID:
- 057801
- Format(s):
- Medium: X
- Sponsoring Org:
- National Science Foundation
More Like this
-
-
Abstract Spin-flip (SF) methods applied to excited-state approaches like the Bethe–Salpeter equation allow access to the excitation energies of open-shell systems, such as molecules and defects in solids. The eigenstates of these solutions, however, are generally not eigenstates of the spin operator . Even for simple cases where the excitation vector is expected to be, for example, a triplet state, the value of may be found to differ from 2.00; this difference is called ‘spin contamination’. The expectation values must be computed for each excitation vector, to assist with the characterization of the particular excitation and to determine the amount of spin contamination of the state. Our aim is to provide for the first time in the SF methods literature a comprehensive resource on the derivation of the formulas for as well as its computational implementation. After a brief discussion of the theory of the SF Bethe–Salpeter equation (BSE) and some examples further illustrating the need for calculating , we present the derivation for the general equation for computing with the eigenvectors from an SF-BSE calculation, how it is implemented in a Python script, and timing information on how this calculation scales with the size of the SF-BSE Hamiltonian.more » « less
-
Abstract Entanglement is an intrinsic property of quantum mechanics and is predicted to be exhibited in the particles produced at the Large Hadron Collider. A measurement of the extent of entanglement in top quark-antiquark ( ) events produced in proton–proton collisions at a center-of-mass energy of 13 TeV is performed with the data recorded by the CMS experiment at the CERN LHC in 2016, and corresponding to an integrated luminosity of 36.3 fb−1. The events are selected based on the presence of two leptons with opposite charges and high transverse momentum. An entanglement-sensitive observableDis derived from the top quark spin-dependent parts of the production density matrix and measured in the region of the production threshold. Values of are evidence of entanglement andDis observed (expected) to be ( ) at the parton level. With an observed significance of 5.1 standard deviations with respect to the non-entangled hypothesis, this provides observation of quantum mechanical entanglement within pairs in this phase space. This measurement provides a new probe of quantum mechanics at the highest energies ever produced.more » « less
-
Abstract A search for resonances in top quark pair ( ) production in final states with two charged leptons and multiple jets is presented, based on proton–proton collision data collected by the CMS experiment at the CERN LHC at , corresponding to 138 fb−1. The analysis explores the invariant mass of the system and two angular observables that provide direct access to the correlation of top quark and antiquark spins. A significant excess of events is observed near the kinematic threshold compared to the non-resonant production predicted by fixed-order perturbative quantum chromodynamics (pQCD). The observed enhancement is consistent with the production of a color-singlet pseudoscalar ( ) quasi-bound toponium state, as predicted by non-relativistic quantum chromodynamics. Using a simplified model for toponium, the cross section of the excess above the pQCD prediction is measured to be .more » « less
-
Abstract A test of lepton flavor universality in and decays, as well as a measurement of differential and integrated branching fractions of a nonresonant decay are presented. The analysis is made possible by a dedicated data set of proton-proton collisions at recorded in 2018, by the CMS experiment at the LHC, using a special high-rate data stream designed for collecting about 10 billion unbiased b hadron decays. The ratio of the branching fractions to is determined from the measured double ratio of these decays to the respective branching fractions of the with and decays, which allow for significant cancellation of systematic uncertainties. The ratio is measured in the range , whereqis the invariant mass of the lepton pair, and is found to be , in agreement with the standard model expectation . This measurement is limited by the statistical precision of the electron channel. The integrated branching fraction in the sameq2range, , is consistent with the present world-average value and has a comparable precision.more » « less
An official website of the United States government
