Operation of a Modular 3D-Pixelated Liquid Argon Time-Projection Chamber in a Neutrino Beam
Abstract
1. Introduction
2. Design of the 2x2 Demonstrator
2.1. LArTPC Detectors: Advantages and Challenges
2.2. ND-LAr: Pileup Mitigation
2.3. 2x2 Demonstrator: Overview
2.4. Cryogenic System: Design and Monitoring
2.5. NuMI Beam
2.6. LArTPC Design and Readout
2.6.1. LArTPC Subsystem: Drift High Voltage
2.6.2. LArTPC Subsystem: Charge Readout
2.6.3. LArTPC Subsystem: Light Readout
2.7. Mx2: External Scintillator
3. Installation and Commissioning
3.1. Module Construction and Installation
3.2. Commissioning: Cryogenics
3.3. Commissioning: TPC High Voltage
3.4. Commissioning: Light Readout
3.5. Commissioning: Charge Readout
3.6. Data Collection: Nominal HV with LAr Purity
4. Data Validation and Event Displays
4.1. Validation: Multi-Detector Triggering
4.2. Validation: Charge Readout Self-Triggering
4.3. Visual Confirmation of Neutrino Interactions
- Event 1: NuMI beam trigger on contained charged current muon neutrino.This event shows a charged current neutrino interaction with its vertex in Module 3, upstream. The interaction produces one through-going muon track which passes above the downstream Mx2 planes, as well as several other tracks that are contained within the LArTPC volume.

- Event 2: NuMI beam trigger on two charged current neutrino interactions.Two charged current neutrino interactions, one in Module 1 and the other in Module 2, produce tracks within the LArTPC volume. A rock muon passing through both upstream and downstream Mx2 taggers pierces Modules 2 and 3 during the same period of 16 μs, but the neutrino interactions remain well separated from each other by the detector’s modularity.

- Event 3: NuMI beam trigger on external neutrino interactions with Michel electrons.Several rock muons produce tracks in the LArTPC volume; one of these muons decays in Module 3, generating a Michel electron. In the light waveforms corresponding to the LCMs nearest the decay (top left), one can see a separation of 2.48 μs between fast scintillation signals associated with the muon and the Michel electron.

- Event 4: Light threshold trigger on cosmic muon.A cosmic muon enters the LArTPC at a relatively shallow angle; with only the minimally-processed pixel hits, showering tracks are clearly defined, while the y-axis spatial resolution of the LRS is visible in the waveform sums bordering each charge display. Additionally, as the cosmic muon only deposits energy in Modules 2 and 3, the successful optical isolation of adjacent TPCs is clearly demonstrated. As the external Mx2 panels trigger solely on the NuMI A9 early-warning signal, there are no recorded Mx2 tracks corresponding to this off-beam LArTPC event.

5. Lessons Learned
6. Conclusions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Feature | Module 0 | Module 1 | Module 2 | Module 3 |
|---|---|---|---|---|
| Pixel Pitch [mm] a | 4.43 | 4.43 | 3.88 | 4.43 |
| Pixels/Tile | 4900 | 4900 | 6400 | 4900 |
| SiPM Model b | 6025PE | 6050PE | 6050PE | 6050PE |
| Edge Dichroic Mirror [ACL] | No | Yes | Yes | Yes |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Abbaslu, S.; Abud, A.A.; Acciarri, R.; Accorsi, L.P.; Acero, M.A.; Adames, M.R.; Adamov, G.; Adamowski, M.; Adriano, C.; Akbar, F.; et al. Operation of a Modular 3D-Pixelated Liquid Argon Time-Projection Chamber in a Neutrino Beam. Instruments 2026, 10, 18. https://doi.org/10.3390/instruments10010018
Abbaslu S, Abud AA, Acciarri R, Accorsi LP, Acero MA, Adames MR, Adamov G, Adamowski M, Adriano C, Akbar F, et al. Operation of a Modular 3D-Pixelated Liquid Argon Time-Projection Chamber in a Neutrino Beam. Instruments. 2026; 10(1):18. https://doi.org/10.3390/instruments10010018
Chicago/Turabian StyleAbbaslu, S., A. Abed Abud, R. Acciarri, L. P. Accorsi, M. A. Acero, M. R. Adames, G. Adamov, M. Adamowski, C. Adriano, F. Akbar, and et al. 2026. "Operation of a Modular 3D-Pixelated Liquid Argon Time-Projection Chamber in a Neutrino Beam" Instruments 10, no. 1: 18. https://doi.org/10.3390/instruments10010018
APA StyleAbbaslu, S., Abud, A. A., Acciarri, R., Accorsi, L. P., Acero, M. A., Adames, M. R., Adamov, G., Adamowski, M., Adriano, C., Akbar, F., Alemanno, F., Alex, N. S., Allison, K., Alrashed, M., Alton, A., Alvarez, R., Alves, T., Aman, A., Amar, H., ... On behalf of the DUNE Collaboration. (2026). Operation of a Modular 3D-Pixelated Liquid Argon Time-Projection Chamber in a Neutrino Beam. Instruments, 10(1), 18. https://doi.org/10.3390/instruments10010018
