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Most atomic nuclei exhibit ellipsoidal shapes characterized by quadrupole deformation $β_2$ and triaxiality $γ$, and sometimes even a pear-like octupole deformation $β_3$. The STAR experiment introduced a new "imaging-by-smashing" technique [arXiv:2401.06625, arXiv:2501.16071] to image the nuclear global shape by colliding nuclei at ultra-relativistic speeds and analyzing outgoing debris. Features of nuclear shape manifest in collective observables like anisotropic flow $v_n$ and radial flow via mean transverse momentum $[p_{\mathrm{T}}]$. We present new measurements of the variances of $v_n$ ($n=2$, 3, and 4) and $[p_{\mathrm{T}}]$, and the covariance of $v_n^2$ with $[p_{\mathrm{T}}]$, in collisions of highly deformed $^{238}$U and nearly spherical $^{197}$Au. Ratios of these observables between the two systems effectively suppress common final-state effects, isolating the strong impact of uranium's deformation. By comparing results with state-of-the-art hydrodynamic model calculations, we extract $β_{2\mathrm{U}}$ and $γ_{\mathrm{U}}$ values consistent with those deduced from low-energy nuclear structure measurements. Measurements of $v_3$ and its correlation with $[p_{\mathrm{T}}]$ also provide the first experimental suggestion of a possible octupole deformation for $^{238}$U. These findings provide significant support for using high-energy collisions to explore nuclear shapes on femtosecond timescales, with implications for both nuclear structure and quark-gluon plasma studies.
Data from Figure 2, panel a, $p(N_{ch}^{rec})$
Data from Figure 2, panel b, $p(N_{ch}^{rec})$
Data from Figure 3, panel a, Au+Au
Data from Figure 3, panel a, U+U
Data from Figure 3, panel b, Au+Au
Data from Figure 3, panel b, U+U
Data from Figure 6, panel a, 0-0.5% Centrality, 0.2<p_{T}<3 GeV/c
Data from Figure 6, panel b, 0-0.5% Centrality, 0.2<p_{T}<3 GeV/c
Data from Figure 6, panel c, 0-0.5% Centrality, 0.2<p_{T}<3 GeV/c
Data from Figure 22, panel a, U+U/Au+Au
Data from Figure 22, panel a, U+U/Au+Au
Data from Figure 30, upper row panel a, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, upper row panel b, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, upper row panel c, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, upper row panel d, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, middle row panel a, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, middle row panel b, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, middle row panel c, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, middle row panel d, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, lower row panel a, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, lower row panel b, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, lower row panel c, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 30, lower row panel d, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel a, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel a, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel b, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel b, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel c, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel c, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel d, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel d, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel e, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel e, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel f, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel f, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel g, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel g, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel g, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel g, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel i, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel i, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel g, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel g, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel k, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel k, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel l, Au+Au, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 31, panel l, U+U, 2subevent method, 0.2<p_{T}<3 GeV/c
Data from Figure 32, upper row panel a, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, upper row panel b, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, upper row panel c, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, upper row panel d, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, middle row panel a, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, middle row panel b, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, middle row panel c, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, middle row panel d, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, lower row panel a, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, lower row panel b, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, lower row panel c, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 32, lower row panel d, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel a, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel a, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel b, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel b, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel c, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel c, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel d, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel d, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel e, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel e, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel f, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel f, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel g, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel g, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel g, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel g, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel i, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel i, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel g, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel g, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel k, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel k, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel l, Au+Au, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 33, panel l, U+U, 2subevent method, 0.5<p_{T}<3 GeV/c
Data from Figure 34, upper row panel a, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, upper row panel b, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, upper row panel c, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, upper row panel d, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, middle row panel a, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, middle row panel b, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, middle row panel c, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, middle row panel d, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, lower row panel a, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, lower row panel b, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, lower row panel c, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 34, lower row panel d, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel a, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel a, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel b, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel b, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel c, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel c, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel d, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel d, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel e, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel e, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel f, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel f, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel g, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel g, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel g, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel g, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel i, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel i, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel g, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel g, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel k, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel k, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel l, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 35, panel l, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 36, upper row panel a, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, upper row panel b, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, upper row panel c, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, upper row panel d, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, middle row panel a, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, middle row panel b, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, middle row panel c, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, middle row panel d, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, lower row panel a, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, lower row panel b, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, lower row panel c, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 36, lower row panel d, 2subevent method, 0.5<p_{T}<2 GeV/c
Data from Figure 37, panel a, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel a, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel b, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel b, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel c, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel c, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel d, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel d, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel e, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel e, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel f, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel f, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel g, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel g, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel g, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel g, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel i, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel i, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel g, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel g, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel k, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel k, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel l, Au+Au, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 37, panel l, U+U, 2subevent method, 0.2<p_{T}<2 GeV/c
Data from Figure 38, upper row panel a, 2subevent method, four p_{T} ranges
Data from Figure 38, upper row panel b, 2subevent method, four p_{T} ranges
Data from Figure 38, upper row panel c, 2subevent method, four p_{T} ranges
Data from Figure 38, upper row panel d, 2subevent method, four p_{T} ranges
Data from Figure 38, middle row panel a, 2subevent method, four p_{T} ranges
Data from Figure 38, middle row panel b, 2subevent method, four p_{T} ranges
Data from Figure 38, middle row panel c, 2subevent method, 0.2< p_{T} <2 Gev/c, 0.5<p_{T}<2 GeV/c
Data from Figure 38, middle row panel c, 2subevent method, 0.2< p_{T} <3 Gev/c, 0.5<p_{T}<3 GeV/c
Data from Figure 38, middle row panel d, 2subevent method, four p_{T} ranges
Data from Figure 38, lower row panel a, 2subevent method, four p_{T} ranges
Data from Figure 38, lower row panel b, 2subevent method, four p_{T} ranges
Data from Figure 38, lower row panel c, 2subevent method, 0.2< p_{T} <2 Gev/c, 0.5<p_{T}<2 GeV/c
Data from Figure 38, lower row panel c, 2subevent method, 0.2< p_{T} <3 Gev/c, 0.5<p_{T}<3 GeV/c
Data from Figure 38, lower row panel d, 2subevent method, four p_{T} ranges
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