Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Proton Irradiation and Thermal Restoration of SiPMs for LEO Missions

View through CrossRef
Silicon Photomultipliers (SiPMs) are optical sensors widely used in space applications due to their high photon detection efficiency, low power consumption, and robustness. However, in Low Earth Orbit (LEO), their performance degrades over time due to prolonged exposure to ionizing radiation, primarily from trapped protons and electrons. The dominant radiation-induced effect in SiPMs is an increase in dark current, which can compromise detector sensitivity. This study investigates the potential of thermal annealing as a mitigation strategy for radiation damage in SiPMs. We designed and tested PCB-integrated heaters to selectively heat irradiated SiPMs and induce recovery processes. A PID-controlled system was developed to stabilize the temperature at 100 °C, and a remotely controlled experimental setup was implemented to operate under irradiation conditions. Two SiPMs were simultaneously irradiated with 9 MeV protons at the EDRA facility, reaching a 1 MeV neutron equivalent cumulative fluence of (9.5 ± 0.2) × 108 cm−2. One sensor underwent thermal annealing between irradiation cycles, while the other served as a control. Throughout the experiment, dark current was continuously monitored using a source measure unit, and I–V curves were recorded before and after irradiation. A recovery of more than 39% was achieved after only 5 min of thermal cycling at 100 °C, supporting this recovery approach as a low-complexity strategy to mitigate radiation-induced damage in space-based SiPM applications and increase device lifetime in harsh environments.
Title: Proton Irradiation and Thermal Restoration of SiPMs for LEO Missions
Description:
Silicon Photomultipliers (SiPMs) are optical sensors widely used in space applications due to their high photon detection efficiency, low power consumption, and robustness.
However, in Low Earth Orbit (LEO), their performance degrades over time due to prolonged exposure to ionizing radiation, primarily from trapped protons and electrons.
The dominant radiation-induced effect in SiPMs is an increase in dark current, which can compromise detector sensitivity.
This study investigates the potential of thermal annealing as a mitigation strategy for radiation damage in SiPMs.
We designed and tested PCB-integrated heaters to selectively heat irradiated SiPMs and induce recovery processes.
A PID-controlled system was developed to stabilize the temperature at 100 °C, and a remotely controlled experimental setup was implemented to operate under irradiation conditions.
Two SiPMs were simultaneously irradiated with 9 MeV protons at the EDRA facility, reaching a 1 MeV neutron equivalent cumulative fluence of (9.
5 ± 0.
2) × 108 cm−2.
One sensor underwent thermal annealing between irradiation cycles, while the other served as a control.
Throughout the experiment, dark current was continuously monitored using a source measure unit, and I–V curves were recorded before and after irradiation.
A recovery of more than 39% was achieved after only 5 min of thermal cycling at 100 °C, supporting this recovery approach as a low-complexity strategy to mitigate radiation-induced damage in space-based SiPM applications and increase device lifetime in harsh environments.

Related Results

Proton Irradiation and Thermal Recovery of SiPMs for LEO Missions
Proton Irradiation and Thermal Recovery of SiPMs for LEO Missions
Silicon Photomultipliers (SiPMs) are optical sensors widely used in space applications due to their high photon detection efficiency, low power consumption, and robustness. However...
MO‐SAM‐BRB‐02: Proton Physics and Technology
MO‐SAM‐BRB‐02: Proton Physics and Technology
The dose localization advantages of proton beams derive primarily from the Bragg peak in the proton stopping distribution. Therefore, the potential clinical gains expected form pro...
Thermal Effects in High Compactness CEA Stack
Thermal Effects in High Compactness CEA Stack
Thermal management is a pivotal aspect of stack durability and system operability. Consequently, understanding the thermal mapping within a stack based on its operating conditions ...
Precise point positioning with LEO augmentation: results from two experimental satellites
Precise point positioning with LEO augmentation: results from two experimental satellites
Using LEO satellites for positioning and navigation has been a research hotspot in the GNSS community in recent years. As the LEO satellites are much closer to earth and move much ...
Post-Irradiation Fracture Toughness Characterization of Generation II FeCrAl Alloys
Post-Irradiation Fracture Toughness Characterization of Generation II FeCrAl Alloys
Abstract FeCrAl alloys are promising candidate materials for the accident tolerant fuel (ATF) cladding application due to their exceptional resistance to oxidation i...
Proton aurora related to intervals of pulsations of diminishing periods
Proton aurora related to intervals of pulsations of diminishing periods
Geomagnetic pulsations in the Pc1 frequency range are believed to be an indicator of electromagnetic ion cyclotron waves arriving from the equatorial magnetosphere, where the waves...
Study on Dosimetry Technology of Absorbed Dose to Water for Proton
Study on Dosimetry Technology of Absorbed Dose to Water for Proton
In proton therapy, precise energy transfer to tissues is crucial for cancer treatment, as accurate dose delivery directly influences tumor control efficiency and minimizes radiatio...
Computer simulation of an excess proton in aqueous systems
Computer simulation of an excess proton in aqueous systems
This thesis aims at studying the microscopic physical-chemical properties of an excess proton in aqueous systems. From bulk water environments to narrow hydrophobic channels constr...

Back to Top