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January 18, 2026Journal of Vacuum Science & Technology B Nanotechnology and Microelectronics Materials Processing Measurement and Phenomena2 citationsOpen Access

Secondary ion yield enhancement for lipids in frozen hydrated lymphoma tissue samples using water cluster SIMS

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SUSimon UzoniUniversity of GothenburgSZSaba ZeidiUniversity of GothenburgJTJohannes ThomaUniversity of Gothenburg

Key Points

  • This research aims to enhance the yield of secondary ions for lipids in lymphoma tissue samples using frozen-hydrated conditions and water cluster ion beams.
  • Used Ionoptika J105 time-of-flight secondary ion mass spectrometry instrument.
  • Compared H2O and CO2 gas clusters with E/n between 0.09 and 0.15 eV.
  • Analyzed both frozen-hydrated and freeze-dried tissue sections.
  • Applied depth profiling and atomic force microscopy measurements.
  • Secondary ion yields for lipids were higher in frozen-hydrated samples than freeze-dried ones.
  • H2O gas cluster ion beams provided higher secondary ion yields and lower fragmentation compared to CO2.
  • Sputter rate remained similar across both cluster types despite differences in ion yields.

Abstract

The enhancement of secondary ion yields (SI-yields) for lipids by combining frozen-hydrated sample handling and H2O gas cluster ion beams (GCIBs) was investigated in lymphoma tissue sections. Using an Ionoptika J105 time-of-flight secondary ion mass spectrometry instrument equipped with a 40 keV GCIB, H2O and CO2 gas clusters with E/n (kinetic energy per atomic mass for the cluster) ranging between 0.09 and 0.15 eV were compared on frozen-hydrated and freeze-dried tissue sections. The results showed that SI-yields for intact lipids increased while fragmentation decreased with decreasing E/n for H2O and CO2 GCIBs. At similar E/n, the H2O-GCIB had significantly higher SI-yields and reduced fragmentation, but a very similar sputter rate when compared to the CO2 GCIB. Tissue sections analyzed under frozen-hydrated conditions had higher SI-yields and sputter rates compared to freeze-dried samples. Depth profiling combined with atomic force microscopy measurements highlighted that freeze-drying altered the sample condition, affecting the sputter rate and SI-yields. From this study, we conclude that combining frozen-hydrated samples and H2O-GCIB provides the optimum analysis method for ToF-SIMS for studying lipids in tissue sections of this type.

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Cite This Study

Uzoni et al. (2026) studied this question.

synapsesocial.com/papers/696c7835eb60fb80d139675dhttps://doi.org/10.1116/6.0005143
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