Particle physics – study of the elementary constituents of matter – is one of IP2I’s main activities. Through the development of a calorimeter for the future linear accelerator, the direct measurement of antihydrogen acceleration due to Earth’s gravitation and the research conducted on the Higgs boson at the LHC, the FLC (CALICE), AEgIS and CMS teams are helping to assemble the puzzle for an understanding of our universe.
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The team’s objective is to develop a high granularity hadronic calorimeter to equip future leptonic gas pedals. The calorimeter proposed for the FLC is entitled Semi-Digital Hadronic Calorimeter (SDHCAL). It uses RPC (resistive plate chamber) type gas detectors as active medium, read by integrated electronics with a granularity of 1cm2. The RPCs are inserted in a compact mechanical structure that acts as an absorber.
This type of calorimeter is used to measure the energy of the hadrons produced during collisions in particle gas pedals: on reaching the hadron calorimeter, they will deposit their energy in it by creating a sheaf of particles (called a jet) whose shape and size make it possible to identify it and measure its energy. The high granularity of the detector is therefore essential to increase its performance.
The team, with its partners, has built the first prototype of this new generation of calorimeters, as well as the associated electronics, and has designed Particle Flow Algorithms (PFA) to improve the reconstruction of the jets resulting from the interactions and to precisely measure their energy. Several tests at CERN have demonstrated the great power of SDHCAL.
The team contributed to the realization of the TOMUVOL detector for volcano tomography. It has developed a new reading scheme for large detectors with a reduced number of electronic channels while maintaining high granularity.
SDHCAL Prototype

Activities
- Organization of several beam tests of the SDHCAL prototype at CERN (2015, 16, 17 and 18) and exploitation of the data for the study of hadronic showers.
- Development of the full simulation of the SDHCAL prototype as well as the SDHCAL in ILD and CEPC.
- Design, construction and operation of the TOMUVOL detector with LPC.
- Design and realization of large RPC detectors (2 m2) and new reading electronics for module0 of SDHCAL for the ILD ILC project.
- Participation in the drafting of the ILD-ILC DBD and in the CDR of the CEPC project.
- Design and realization of the large reading cards for RPC chambers for the muon CMS upgrade project using timing.
- Design of a new ZDAQ acquisition system
- Design of a new reading card for gas detectors (PCT/EP2018/053561-EN3062926)
- Development of PFA algorithms (ArborPFA/APRIL)
- Development of a new material for RPC detectors to increase their detection rate by a factor of 1000.
- Design and realization of a detection system for homeland security for the company Smiths Detection based on the patent. Financing by PULSALYS.
- Co-organization of the CHEF conferences on calorimetry.
Interaction of a pion (left) and an electron (right) in SDHCAL
Measurement of hadron beam energy at CERN (left: linearity, right: resolution)

Knit Pads for Reading Gas Detectors (PCT/EP2018/053561-EN3062926)

The AEgIS (Antihydrogen Experiment: Gravity, Interferometry, Spectroscopy) team at IP2I is working on the experiment of the same name carried out at CERN. The aim is to make the first direct measurement of the effects of gravitation on antimatter by observing the fall of antihydrogen atoms.
Researchers use antiprotons to produce a beam of antihydrogen atoms that is sent into a device called a Moire deflectometer. Combined with a position detector, this allows them to measure the magnitude of the gravitational interaction between matter (Earth) and antimatter (antihydrogen) to an accuracy of 1%.
The deflectometer is equipped with a grid system that divides the antihydrogen beam into parallel beams, creating a periodic structure whose analysis allows the deflection of the antihydrogen beam during its horizontal flight to be determined. By combining this measurement with the time of flight, we can then measure the gravitational force exerted on the antihydrogen atoms.
The AEgIS collaboration brings together physicists from all over Europe and faces many technical challenges such as the use of very low temperatures (0.1° K), ultra-vacuum (10-11 mbar), high magnetic fields (1 and 5 T), Lyman lasers α to characterize antihydrogen jets, the production of excited positronium, antiprotons, etc…
Our team built the hydrogen ion beam used to characterize the deflectometer’s moirĂ© arrays.
NON-PERMANENTS:
- DOCTORANTS / DOCTORAL STUDENTS:
- CHERCHEURS NON-PERMANENTS / NON-PERMANENT RESEARCHERS:
- S. Chatrchyan, V. Khachatryan, A.M. Sirunyan, W. Adam, B. Arnold, et al.. Transverse momentum and pseudorapidity distributions of charged hadrons in pp collisions at sqrt(s) = 0.9 and 2.36 TeV. Journal of High Energy Physics, 2010, 02, pp.041. ⟨10.1007/JHEP02(2010)041⟩. ⟨in2p3-00454619⟩
- S. Chatrchyan, P. Nedelec, D. Sillou, M. Besancon, R. Chipaux, et al.. Time Reconstruction and Performance of the CMS Electromagnetic Calorimeter. Journal of Instrumentation, 2010, 5(03), pp.T03011. ⟨10.1088/1748-0221/5/03/T03011⟩. ⟨in2p3-00664804⟩
- S. Chatrchyan, P. Nedelec, D. Sillou, M. Besancon, R. Chipaux, et al.. Commissioning and Performance of the CMS Silicon Strip Tracker with Cosmic Ray Muons. Journal of Instrumentation, 2010, 5(03), pp.T03008. ⟨10.1088/1748-0221/5/03/T03008⟩. ⟨in2p3-00664753⟩
- ClĂ©ment Bâty. Contribution Ă la calibration des photons par les dĂ©sintĂ©grations radiatives Z --> \nu\nu gamma , dans l'expĂ©rience CMS au LHC (CERN). Autre [cond-mat.other]. UniversitĂ© Claude Bernard - Lyon I, 2009. Français. ⟨NNT : 2009LYO10239⟩. ⟨tel-00529743v2⟩
- S. Gascon-Shotkin. Photon commissioning in CMS. XXth Hadron Collider Physics Symposium (HCP 2009), Nov 2009, Evian, France. ⟨in2p3-00967841⟩
- C. Bâty, S. Gascon-Shotkin, M. Lethuillier, J. Tao, M. Moretti, et al.. Preparatory study for QED ME/PS matching. 2nd France China Particle Physics Laboratory (FCPPL) Workshop 2009, Mar 2009. ⟨in2p3-01011122⟩
- G. Chen, S. Gascon-Shotkin. The CMS IN2P3-IPNL/IHEP project: photon studies for LHC startup physics. 2nd France China Particle Physics Laboratory (FCPPL) Workshop 2009, Mar 2009. ⟨in2p3-01011124⟩
- N. Chanon, S. Gascon-Shotkin, M. Lethuillier. Impact of higher-order calculations on kinematical observables in 2gamma processes. 2nd France China Particle Physics Laboratory (FCPPL) Workshop 2009, Mar 2009. ⟨in2p3-01011121⟩
- V.M. Abazov, B. Abbott, M. Abolins, B.S. Acharya, M. Adams, et al.. Measurement of the WW production cross section with dilepton final states in p-pbar collisions at sqrt(s)=1.96 TeV and limits on anomalous trilinear gauge couplings. Physical Review Letters, 2009, 103, pp.191801. ⟨10.1103/PhysRevLett.103.191801⟩. ⟨in2p3-00375753⟩
- Eric Chabert. IntĂ©gration d'un bouchon du trajectographe au silicium de l'expĂ©rience CMS au LHC et Ă©tude du potentiel de dĂ©couverte de rĂ©sonances se dĂ©sintĂ©grant en paires de quarks top. Physique des Hautes Energies - ExpĂ©rience [hep-ex]. UniversitĂ© Claude Bernard - Lyon I, 2008. Français. ⟨NNT : ⟩. ⟨tel-00363904⟩
