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Free, publicly-accessible full text available June 1, 2027
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A hot and dense state of nuclear matter, known as the quark-gluon plasma, is created in collisions of ultrarelativistic heavy nuclei. Highly energetic quarks and gluons, collectively referred to as partons, lose energy as they travel through this matter, leading to suppressed production of particles with large transverse momenta ( ). Conversely, high- particle suppression has not been seen in proton-lead collisions, raising questions regarding the minimum system size required to observe parton energy loss. Oxygen-oxygen (OO) collisions examine a region of effective system size that lies between these two extreme cases. The CMS detector at the CERN LHC has been used to quantify charged-particle production in inclusive OO collisions for the first time via measurements of the nuclear modification factor ( ). The is derived by comparing particle production to expectations based on proton-proton ( ) data and has a value of unity in the absence of nuclear effects. The data for OO and collisions at a nucleon-nucleon center-of-mass energy correspond to integrated luminosities of and , respectively. The is below unity with a minimum of around . The data exhibit better agreement with theoretical models incorporating parton energy loss as compared to baseline models without energy loss.more » « lessFree, publicly-accessible full text available April 1, 2027
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Abstract This paper presents a search for new physics through the process where a massive particle, X, decays into a Higgs boson and a second particle, Y. The Higgs boson subsequently decays into a bottom quark–antiquark pair, which is reconstructed as a single large-radius jet. The decay products of Yare also assumed to produce a single large-radius jet. The identification of the Yparticle is enhanced by computing the anomaly score of its candidate jet using an autoencoder, which measures deviations from typical quark- or gluon-induced jets. This allows a simultaneous search for multiple Ydecay scenarios within a single analysis. In the main benchmark process, Yis a scalar particle that decays into a Wboson pair. Two other scalar Ydecay processes are also considered as benchmarks: decays to a light quark–antiquark pair, and decays to a top quark–antiquark pair. A fourth benchmark process considers Yas a hadronically decaying top quark, arising from the decay of a vector-like quark into a top quark and a Higgs boson. Data recorded by the CMS experiment at a center-of-mass energy of 13$$\,\text {Te}\hspace{-.08em}\text {V}$$ in 2016–2018, corresponding to an integrated luminosity of 138$$\,\text {fb}^{-1}$$ , are analyzed. The search covers Xmasses between 1.4 and 3.0$$\,\text {Te}\hspace{-.08em}\text {V}$$ and Ymasses between 90 and 400$$\,\text {Ge}\hspace{-.08em}\text {V}$$ , with all simulated signals produced in the narrow-width approximation. No significant excess above the standard model background expectation is observed. The most stringent upper limits to date are placed on benchmark signal cross sections for various masses of X and Y particlesmore » « lessFree, publicly-accessible full text available February 1, 2027
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Abstract The traditional quark model1,2accounts for the existence of baryons, such as protons and neutrons, which consist of three quarks, as well as mesons, composed of a quark–antiquark pair. Only recently has substantial evidence started to accumulate for exotic states composed of four or five quarks and antiquarks3. The exact nature of their internal structure remains uncertain4–29. Here we report the first measurement of quantum numbers of the recently discovered family of three all-charm tetraquarks30–32, using data collected by the CMS experiment at the Large Hadron Collider from 2016 to 2018 (refs. 33,34). The angular analysis techniques developed for the discovery and characterization of the Higgs boson35–37have been applied to the new exotic states. Here we show that the quantum numbers for parityPand charge conjugationCsymmetries are found to be +1. The spinJof these exotic states is determined to be consistent with 2ħ, while 0ħand 1ħare excluded at 95% and 99% confidence levels, respectively. TheJPC = 2++assignment implies particular configurations of constituent spins and orbital angular momenta, which constrain the possible internal structure of these tetraquarks.more » « lessFree, publicly-accessible full text available December 4, 2026
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A<sc>bstract</sc> Many analyses at the CERN LHC exploit the substructure of jets to identify heavy resonances produced with high momenta that decay into multiple quarks and/or gluons. This paper presents a new technique for correcting the substructure of simulated large-radius jets from multiprong decays. The technique is based on reclustering the jet constituents into several subjets such that each subjet represents a single prong, and separately correcting the radiation pattern in the Lund jet plane of each subjet using a correction derived from data. The data presented here correspond to an integrated luminosity of 138 fb−1collected by the CMS experiment between 2016–2018 at a center-of-mass energy of 13 TeV. The correction procedure improves the agreement between data and simulation for several different substructure observables of multiprong jets. This technique establishes, for the first time, a robust calibration for the substructure of jets with four or more prongs, enabling future measurements and searches for new phenomena containing these signatures.more » « lessFree, publicly-accessible full text available November 1, 2026
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A measurement is presented of the cross section in proton-proton collisions for the production of two bosons and one boson. It is based on data recorded by the CMS experiment at the CERN LHC at center-of-mass energies and 13.6 TeV, corresponding to an integrated luminosity of . Events with four charged leptons (electrons or muons) in the final state are selected. Both nonresonant production and production, with the Higgs boson decaying into two bosons, are reported. For the first time, the two processes are measured separately in a simultaneous fit. Combining the two modes, signal strengths relative to the standard model (SM) predictions of and are measured for and 13.6 TeV, respectively. The observed (expected) significance for the triboson signal is 3.8 (2.5) standard deviations for , thus providing the first evidence for triboson production at this center-of-mass energy. Combining the two modes and the two center-of-mass energies, the inclusive signal strength relative to the SM prediction is measured to be , with an observed (expected) significance of 4.5 (5.0) standard deviations.more » « less
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