PaperPanorama

Nuclear Experiment·nucl-ex

Mon·Sep 22, 2025

3 papers0 primary·3 cross-listed·reconstructed*

  1. 01*

    A novel method of half-life determination for highly charged ions based on isochronous mass spectrometry

    Qi Zeng · Bushi Huang · Tingwei Peng · Hongfu Li · Xing XuYuanming Xing · Huaiqiang Zhang · Jiankun Zhao · Xu Zhou

    The lifetime of the isomeric state in fully stripped 94Ru44+ ions has been measured using isochronous mass spectrometry (IMS) at the experimental Cooler Storage Ring (CSRe) of the Heavy Ion Research Facility in Lanzhou (HIRFL). Previously, the isomeric lifetime was determined by analyzing the decay time points of individual decay events. In this paper, we present a novel approach to determine the isomeric lifetime based on the survival time of ions obtained from IMS. The survival lifetimes of the ground and isomeric states of 94Ru44+ were measured to be s and s in the laboratory, respectively. Given that the ground state of 94Ru44+ has a natural lifetime of approximately 75 min, its survival lifetime in the experimental setup was predominantly determined by the beam-loss lifetime, including interactions with residual gas in the storage ring and carbon foil of the detector. In contrast, the survival lifetime of 94mRu44+ was governed by its intrinsic nuclear lifetime and additional beam-loss effects. The nuclear decay lifetime of 94mRu44+ was extracted through differential survival lifetime analysis between ground and isomeric states, under the assumption that the beam-loss lifetimes for both quantum systems are identical. Using this novel methodology, the lifetime measured in the laboratory frame was s. After relativistic time-dilation corrections, the corresponding rest-frame half-life was calculated to be s. This result demonstrates excellent consistency with previous experimental results, validating the reliability of the new method. This method is suitable for determining half-lives of highly charged ions in the range of several tens of microseconds to milliseconds using IMS.

    physics.ins-detnucl-exphysics.acc-phCPC(2025)·0 citations
  2. 02*

    Accessing nucleon transversity with one-point energy correlators

    Mei-Sen Gao🇨🇳 · Zhong-Bo Kang🇺🇸 · Wanchen Li🇨🇳 · Ding Yu Shao🇨🇳

    We propose a novel probe of the nucleon's transversity distribution, , using the one-point energy correlator (OPEC), an infrared-and-collinear safe jet substructure observable. We demonstrate that in transversely polarized collisions, the OPEC exhibits a single-spin asymmetry (SSA) with a clean angular dependence. This method probes SSA over a much wider kinematic range in the angular scale compared to traditional measurements of hadron transverse momentum~, establishing a complementary and systematically distinct channel to study the nucleon's three-dimensional structure at RHIC and the future Electron-Ion Collider.

    hep-phhep-exnucl-exnucl-thPRL(2026)·18 citations
  3. 03*

    Simulating the Angular Distribution of Cherenkov Radiation in Thick Media

    Dmytro Minchenko🇨🇦 · Juan Pablo Yañez🇨🇦 · Aksel Hallin🇨🇦

    We present a study of the emission of Cherenkov radiation in thick media, explore the limitations of the simulation tools currently in use in particle and nuclear physics, and propose a method for overcoming these limitations. We start with a derivation of the Cherenkov power spectrum and its angular profile, accounting for interference of the radiation emitted, in contrast with commonly used tools that assume perfect coherence. We then study the impact that the path of electrons through a medium has on the angular profile of Cherenkov light. Finally, we devise a model that can introduce these effects in Geant4 and tune it to explain calibration data from the water-phase of SNO+. We find that the tuned model significantly improves the agreement between data and simulation, so we provide it for its wider use.

    physics.ins-dethep-exnucl-exNucl.Instrum.Meth.A(2026)·0 citations

* Reconstructed cohort: no mailing for this day survives in the archive. Papers are grouped by their submission times and arXiv's announcement cut-off, assuming announcement without delay; positions follow identifier order. Validated at ~91% exact-day agreement against the archived era.