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Tracing Vacuum Hadronization with Conserved Currents

Weiyao Ke, Hai Tao Li, Wanchen Li, Xiaohui Liu, Ding Yu Shao

hep-pharXiv:2608.19708

Abstract

We show that color triality constrains the nonperturbative states that screen a Wilson-line endpoint, allowing the joint flows of net electric charge, baryon number, and strangeness to probe QCD vacuum hadronization. Whether evaluated from resolved hadrons in a jet initiated by a quark of flavor f or from the corresponding charge correlators, these flows satisfy the Gell-Mann--Nishijima relation Q flowf I3,f +12( S flowf + B flowf ), where I3,f is the third component of the initiating-quark isospin. The net jet baryon number, B flowf rqq1+rqq, directly probes the relative probability of a diquark--antidiquark vacuum excitation, with rqq the diquark-to-quark production ratio. Thus, for rqq1, the baryon number carried by the jet is substantially suppressed relative to the initiating-quark value Bf=1/3. Likewise, the strange-to-light pair-production ratio, defined by u u:d d:s s=1:1:rs, is encoded in the measured jet strangeness S flowf Sf+3rs2+rs (13- B flowf), predicting a nonzero mean net strangeness even in u- and d-initiated jets. The conserved-current moments appearing in these relations are independent of the renormalization scale. Their simultaneous measurement therefore provides a direct, flavor-resolved probe of vacuum pair production and quantum-number transport during hadronization.

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