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arXiv:2408.14458·v2·Mesoscale and Nanoscale Physics

Evidence of Coulomb liquid phase in few-electron droplets

Jashwanth Shaju🇫🇷 · Elina Pavlovska🇱🇻 · Ralfs Suba🇱🇻 · Junliang Wang🇫🇷 · Seddik Ouacel🇫🇷 · Thomas Vasselon🇫🇷 · Matteo Aluffi🇫🇷 · Lucas Mazzella🇫🇷 · Clément Geffroy🇫🇷 · Arne Ludwig🇩🇪 · Andreas D. Wieck🇩🇪 · Matias Urdampilleta🇫🇷

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Abstract

Emergence of universal collective behaviour from interactions within a sufficiently large group of elementary constituents is a fundamental scientific paradigm. In physics, correlations in fluctuating microscopic observables can provide key information about collective states of matter such as deconfined quark-gluon plasma in heavy-ion collisions or expanding quantum degenerate gases. Mesoscopic colliders, through shot-noise measurements, have provided smoking-gun evidence on the nature of exotic electronic excitations such as fractional charges, levitons and anyon statistics. Yet, bridging the gap between two-particle collisions and the emergence of collectivity as the number of interacting particles increases remains a challenging task at the microscopic level. Here we demonstrate all-body correlations in the partitioning of electron droplets containing up to N = 5 electrons, driven by a moving potential well through a Y-junction in a semiconductor device. Analyzing the partitioning data using high-order multivariate cumulants and finite-size scaling towards the thermodynamic limit reveals distinctive fingerprints of a strongly-correlated Coulomb liquid. These fingerprints agree well with a universal limit where the partitioning of a droplet is predicted by a single collective variable. Our electron-droplet collider provides critical insight into the interplay of confinement and interaction effects in small electron systems and highlights a new way to study engineered states of matter.

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