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Recoil Geometry Unmasks Gluon Saturation in Forward Z0Z^0 Production

Published 2 Sep 2026 in hep-ph, hep-ex, and nucl-th | (2609.02356v1)

Abstract: Gluon saturation produces characteristic transverse-momentum broadening in nuclei, but QCD radiation largely washes out this signature. We show that fiducial recoil subtraction turns detector acceptance into a transverse-momentum projector that unmasks the broadening in forward Z<sup>0Z<sup>0 production. Subtracting the hadronic recoil measured in a chosen rapidity interval from the boson transverse momentum defines a residual momentum. At leading power, the radiative recoil in this interval cancels, while the residual momentum retains sensitivity to the small-xx nuclear field. Combining a CGC description of the small-xx target with soft-collinear effective theory (SCET) resummation for finite rapidity coverage, we find that a benchmark rapidity coverage $|η<sup>{\rm</sup> lab}|&lt;2.5$ lowers the effective hard scale from MZ91.2M_Z\simeq 91.2 GeV to about 7.5 GeV7.5~\mathrm{GeV} of the Sudakov evolution. Increasing the saturation scale broadens the residual-momentum distribution and weakens recoil alignment, whereas wider coverage makes the proton--nucleus separation clearer in both observables. Detector geometry thus provides tunable control over perturbative recoil, enabling a probe of nonlinear small-xx QCD.

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