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arXiv · 2608.05377

ePIC Early Science Report

Abstract

This Early Science Report from the ePIC Collaboration outlines the compelling physics program achievable during the first years of operation of the Electron-Ion Collider (EIC), prior to the establishment of the full design luminosity and energy range. The analyses are based on realistic early-running beam configurations and detailed Geant4 ePIC detector simulations, hit digitization and data reconstruction. The projected studies from the physics working groups of ePIC span inclusive, semi-inclusive, exclusive, diffractive and tagging, as well as jet and heavy flavor measurements in both electron-proton and electron-ion collisions. Even before the collider reaches its full design performance, these measurements will constrain parton distribution functions in nucleons and nuclei, access transverse-momentum-dependent and spin-dependent observables, probe gluon dynamics in nuclei, and initiate a program of imaging of quarks and gluons. Each measurement is directly connected to the core science pillars of the EIC, identified in the 2018 report by the National Academy of Sciences: understanding the origin of the nucleon mass, unraveling the spin structure of the nucleon, and exploring the emergent properties of dense gluonic matter. The results presented here provide examples that demonstrate that the early years of EIC running with ePIC will deliver novel world-leading insights into Quantum Chromodynamics. In addition, the early science program will establish measurement and analysis methodologies that will pave the way to the subsequent full EIC physics program.

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BibTeXRIS

D. Abbott, N. Abdelrahman, S. Abhijit, I. Abualrob, R. B. Achari, J. Adam, L. Adamczyk, K. Adkins, A. Affolder, K. Agarwal, J. Agarwala, N. Agrawal, C. A. Aidala, W. Akers, A. Al-bataineh, S. N. Alam, M. Alekseev, P. R. Altieri, J. -S. Alvarado Gallenao, S. B. L. Amar, R. Ammendola, I. Amos Cali, G. An, D. Anderson, E. Anderssen, V. Andrieux, G. Andronico, P. Antonioli, N. Apadula, D. Arkhipkin, W. Armstrong, M. Arratia, S. Arrigo, J. Arrington, M. Asai, A. Asaturyan, E. -C. Aschenauer, C. Ayerbe Gayoso, B. Azmoun, J. Bae, Y. Bae, X. Bai, V. Bailey, F. Barbosa, F. Barile, K. Barish, M. Bashkanov, S. Bathe, M. Battaglieri, A. Baty, A. Bazilevsky, T. D. Beattie, B. Beauchamp, Y. Bedfer, N. K. Behera, F. Bellini, R. Bellwied, H. Ben Hannan, M. Benettoni, M. Benoit, V. Berdnikov, J. Bernauer, H. Bervas, R. Besuner, J. Bettane, R. Bhadauriya, H. Bhatt, V. Bhopatkar, S. Bhosale, A. Biagioni, J. Bielcikova, J. Bielčík, Z. Biro, G. Boca, F. Bock, J. Bok, M. Bondi, A. Bonenfant, C. Bonini, M. Borri, F. Bossù, F. Bouyjou, O. Brand-Foissac, D. Brandenburg, N. Brei, A. Bressan, T. Britton, G. E. Bruno, M. Buckland, A. Buckley, L. Bucuru, E. Buron, A. Bylinkin, D. Cacace, H. Caines, A. Calivà, M. T. Camerlingo, P. Campero Rojas, A. Camsonne, M. Capua. 2026-08-05. ePIC Early Science Report. https://arxiv.org/abs/2608.05377

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