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Single Photon Counting Laser Altimetry for Planetary Exploration: Development and Validation with Application for Deep Space Missions

Althaus, Christian und Lingenauber, Kay und Hüttig, Christian und Binger, Jan und Stark, Alexander und Grott, Matthias und Neumann, Jörg und Ligges, Manuel und Schaal, Christopher und Weßels, Peter und Affatato, Vincent (2026) Single Photon Counting Laser Altimetry for Planetary Exploration: Development and Validation with Application for Deep Space Missions. Deutscher Luft- und Raumfahrtkongress 2026, 2026-09-08 - 2026-09-10, Aachen, Deutschland.

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Kurzfassung

This work investigates the feasibility of single-photon avalanche diode (SPAD) matrix–based laser altimetry as a low size, weight, and power (SWaP) solution for future planetary missions, including lunar applications and the European Space Agency L4 mission to Enceladus. These missions require centimeter-level ranging accuracy to enable high-resolution topographic mapping and the detection of tidal surface deformation, providing key constraints on subsurface ocean structure and internal dynamics. Achieving such performance under deep space conditions remains challenging for conventional avalanche photodiode (APD)-based systems due to their comparatively high resource demands.

The scientific and technical motivation builds on recent advances in laser altimetry from instruments such as the BepiColombo Laser Altimeter1 and the Ganymede Laser Altimeter2 aboard JUICE. These systems are designed to achieve vertical accuracies better than 10 cm and enable global topographic mapping as well as the detection of tidal deformation signals. However, a capability gap persists at meter-scale lateral resolution combined with centimete rlevel vertical precision, limiting detailed surface process studies and landing site characterization. Addressing this gap is a key driver for next-generation altimetry concepts.

A central precursor to this work is the single-photon counting laser altimeter (S3LA3), studied at DLR (Figure 1). Airborne and laboratory demonstrations showed that SPAD-based altimetry can achieve decimeter to centimeter-level ranging precision with very low pulse energies (~0.5 µJ), enabling compact and energy-efficient instrument architectures. In particular, airborne campaigns achieved 10–15 cm precision and demonstrated the viability of singlephoton altimetry under dynamic conditions. At the same time, these studies identified key limitations of SPAD detection, including first-photon timing bias, sensitivity to background noise (dark counts, stray light) and the absence of waveform information for direct surface characterization.

To overcome these limitations, this project develops a SPAD matrix–based laser altimeter breadboard using commercial off-the-shelf components with full event logging. In contrast to conventional approaches based on coincidence detection or fixed range gating, the system records time-resolved photon statistics across multiple pixels, enabling advanced postprocessing. Statistical correction models and Bayesian filtering techniques are applied to mitigate first-photon bias and improve signal-to-background discrimination in conditions with little signal photons (Figure 2). Previous results demonstrate that systematic timing errors can be reduced from several centimeters to sub-centimeter levels using such approaches.

The study combines theoretical and experimental investigations. A detailed link budget analysis accounts for surface reflectivity and orbital geometry representative of deep-space missions such as Enceladus. Laboratory experiments focus on noise suppression and robust signal extraction, including outlier rejection and probabilistic filtering. A key objective is to exploit the spatial and temporal statistics of SPAD matrix data to retrieve not only range but also surface properties such as albedo, slope, and roughness.

System validation is performed through airborne testing on a motor glider, enabling performance assessment under dynamic conditions. Building on S3LA heritage, the results demonstrate improved ranging precision and enhanced surface characterization capability, advancing the system toward Technology Readiness Level 5. This work establishes a validated, end-to-end concept for SPAD-based laser altimetry and provides a scalable pathway toward high-precision, low-SWaP instruments, directly supporting future flight payloads for the ESA L4 mission and other planetary exploration missions.

elib-URL des Eintrags:https://elib.dlr.de/226788/
Dokumentart:Konferenzbeitrag (Vortrag)
Titel:Single Photon Counting Laser Altimetry for Planetary Exploration: Development and Validation with Application for Deep Space Missions
Autoren:
AutorenInstitution oder E-Mail-AdresseAutoren-ORCID-iDORCID Put Code
Althaus, ChristianChristian.Althaus (at) dlr.dehttps://orcid.org/0009-0000-1257-3867NICHT SPEZIFIZIERT
Lingenauber, Kaykay.lingenauber (at) dlr.dehttps://orcid.org/0000-0002-3905-9603NICHT SPEZIFIZIERT
Hüttig, ChristianChristian.Huettig (at) dlr.dehttps://orcid.org/0009-0006-3621-7000NICHT SPEZIFIZIERT
Binger, JanJan.Binger (at) dlr.deNICHT SPEZIFIZIERTNICHT SPEZIFIZIERT
Stark, AlexanderAlexander.Stark (at) dlr.dehttps://orcid.org/0000-0001-9110-1138NICHT SPEZIFIZIERT
Grott, MatthiasMatthias.Grott (at) dlr.dehttps://orcid.org/0000-0002-8613-7096NICHT SPEZIFIZIERT
Neumann, JörgLaser Zentrum Hannover, Hannover, GermanyNICHT SPEZIFIZIERTNICHT SPEZIFIZIERT
Ligges, ManuelFraunhofer Institute for Microelectronic Circuits and Systems, Duisburg, GermanyNICHT SPEZIFIZIERTNICHT SPEZIFIZIERT
Schaal, ChristopherFraunhofer Institute for Microelectronic Circuits and Systems, Duisburg, GermanyNICHT SPEZIFIZIERTNICHT SPEZIFIZIERT
Weßels, PeterLaser Zentrum Hannover, Hannover, GermanyNICHT SPEZIFIZIERTNICHT SPEZIFIZIERT
Affatato, VincentTU DelftNICHT SPEZIFIZIERTNICHT SPEZIFIZIERT
Datum:9 September 2026
Referierte Publikation:Nein
Open Access:Ja
Gold Open Access:Nein
In SCOPUS:Nein
In ISI Web of Science:Nein
Status:veröffentlicht
Stichwörter:SPAD matrix, single-photon laser altimetry, planetary exploration, Enceladus, low-SWaP, centimeter-level ranging, Bayesian filtering, airborne validation
Veranstaltungstitel:Deutscher Luft- und Raumfahrtkongress 2026
Veranstaltungsort:Aachen, Deutschland
Veranstaltungsart:nationale Konferenz
Veranstaltungsbeginn:8 September 2026
Veranstaltungsende:10 September 2026
Veranstalter :DLRG
HGF - Forschungsbereich:Luftfahrt, Raumfahrt und Verkehr
HGF - Programm:Raumfahrt
HGF - Programmthema:Erforschung des Weltraums
DLR - Schwerpunkt:Raumfahrt
DLR - Forschungsgebiet:R EW - Erforschung des Weltraums
DLR - Teilgebiet (Projekt, Vorhaben):R - Instrumentenentwicklung
Standort: Berlin-Adlershof
Institute & Einrichtungen:Institut für Weltraumforschung > Optoelektronische Sensorsysteme
Institut für Weltraumforschung > Planetare Geodäsie und Geologie
Hinterlegt von: Althaus, Christian
Hinterlegt am:14 Sep 2026 12:06
Letzte Änderung:14 Sep 2026 12:06

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