Dr. Iris Weber

Dr. Iris Weber

Wilhelm-Klemm-Str. 10, Raum 111f
48149 Münster

T: +49 251 83-39051

Akademisches Profil
Projekte
Publikationen

  • , , , , , , , , und . . „Kindberg, the fifth meteorite fall in Austria: A weakly shocked L6 chondrite breccia with high‐pressure phases.“ Meteoritics and Planetary Science 61 (1): 17–38. doi: 10.1111/maps.70072.
  • , , , , , , , , und . . „Carbonatites from Ol Doinyo Lengai, Tanzania—An unusual rock as analog for Mercury as potential species for hollow formation.“ Icarus 454: 117073–117073. doi: 10.1016/j.icarus.2026.117073.
  • , , , , , , , und . „Laser space weathering analog experiments for micrometeorite bombardment and the question of simulation time.“ Applied Computing and Geosciences 31 100357. doi: 10.1016/j.acags.2026.100357.
  • , , , , , und . . „The IRIS reflectance IR database for space missions.“ Advances in Space Research 77 (3): 3934–3946. doi: 10.1016/j.asr.2025.12.048.
  • , , , , , , , und . . „The SiO2 abundance on the surfaces of the Moon and Mercury.“ Planetary Research 1 (1). doi: 10.53480/bf74-m226.

  • , , , , , , , , , , , , , , , , , , , , , , , , , und . . „The fall of the Haag (LL4-6) chondrite breccia—Just 8 years after the nearby fall Stubenberg (LL6).“ Meteoritics and Planetary Science 60 (11): 2676–2702. doi: 10.1111/maps.70060.
  • , , , , , , und . . „Mid-infrared spectroscopy of lunar high-Ti basaltic glassy analogues.“ Journal of Geophysical Research: Planets 130 (12) e2024JE008895. doi: 10.1029/2024JE008895.

  • , , , , , , , , , , , , , , , , , , , , , , , , , , , , , und . . „Cosmic pears from the Havelland (Germany): Ribbeck, the twelfth recorded aubrite fall in history.“ Meteoritics and Planetary Science 59 (10): 2660–2694. doi: 10.1111/maps.14245.
  • , , , , , , , und . . „Synthetic analogs for lava flows on the surface of Mercury: A mid-infrared study.“ Icarus 415 116078. doi: 10.1016/j.icarus.2024.116078.
  • , , , und . . „Alteration in the Raman spectra of characteristic rock-forming silicate mixtures due to micrometeorite bombardment.“ Journal of Raman Spectroscopy 55 (8): 901–913. doi: 10.1002/jrs.6676.
  • , , , , , , , und . . „Crystallographic and Mid-Infrared Spectroscopic Properties of the CaS-MgS Solid Solution.“ Journal of Geophysical Research: Planets 129: e2024JE0. doi: 10.1029/2024JE008483.
  • , , , , und . . „Prediction of Olivine Composition Under Limited Calibration Inputs: Comparative Study of Mid-Infrared Reflection, Raman Scattering, and Laser-Induced Plasma Spectroscopies.“ Applied Spectroscopy 2024: 1–17. doi: 10.1177/00037028241305162.
  • , , , , , , , , , , , , , , , , , , , , , , , , , , , , , und . . „Cosmic pears from the Havelland (Germany): Ribbeck, the twelfth recorded aubrite fall in history.“ Meteoritics and Planetary Science 59 (10): 2660–2694. doi: 10.1111/maps.14245.

  • , , , , , , , , , , und . „Simulation of surface regolith gardening and impact associated melt layer production under ns-pulsed laser ablation.“ Icarus 391. doi: 10.1016/j.icarus.2022.115344.
  • , , , , , , , und . . „A mid-infrared study of synthetic glass and crystal mixtures analog to the geochemical terranes on mercury.“ Icarus 396: 115498. doi: 10.1016/j.icarus.2023.115498.
  • , , , , , , , , und . . „Mid-Infrared Spectroscopy of Feldspars From the Bühl Basalt (Northern Hesse, Germany) Formed Under Reducing Conditions as Terrestrial Analogue of Mercury for MERTIS.“ Earth and Space Science 10 (6): e2023EA002903.. doi: 10.1029/2023EA002903.
  • , , , , , , , , und . . „Mid-IR spectral properties of different surfaces of silicate mixtures before and after excimer laser irradiation.“ Icarus 404: 115683–115683. doi: 10.1016/j.icarus.2023.115683.
  • , , , , , , und . . „Mid-infrared spectroscopy of sulfidation reaction products and implications for sulfur on Mercury.“ Journal of Geophysical Research: Planets 128 (12): e2023JE0. doi: 10.1029/2023JE007895.

  • , , , , , , und . . „Sulfides and hollows formed on Mercury’s surface by reactions with reducing S-rich gases.“ Earth and Planetary Science Letters 593: 117647. doi: 10.1016/j.epsl.2022.117647.
  • , , , , , , und . . „Space weathering simulation of micrometeorite bombardment on silicates and their mixture for space application.“ Journal of Raman Spectroscopy 53 (3): 411–419. doi: 10.1002/jrs.6162.

  • , , , , , , , , , , , , , , , , und . . „Mid-infrared reflectance spectroscopy of synthetic glass analogs for mercury surface studies.“ Icarus 361: 114363. doi: 10.1016/j.icarus.2021.114363.
  • , , , , , , , , , , , und . . „A shock recovery experiment and its implications for Mercury's surface: The effect of high pressure on porous olivine powder as a regolith analog.“ ıcarus 357: 114162.. doi: 10.1016/j.icarus.2020.114162.
  • , , , , , , , , und . . „The effect of excimer laser irradiation on mid-IR spectra of mineral mixtures for remote sensing.“ Earth and Planetary Science Letters 569: 117072.. doi: 10.1016/j.epsl.2021.117072.
  • , , , , , , und . . „Mid-Infrared Spectroscopy of Anorthosite Samples From Near Manicouagan Crater, Canada, as Analogue for Remote Sensing of Mercury and Other Terrestrial Solar System Objects.“ Journal of Geophysical Research (Planets) 126 (8): e06832.. doi: 10.1029/2021JE006832.
  • , , , , , und . . „Physico-Chemical Investigation of Endodontic Sealers Exposed to Simulated Intracanal Heat Application: Hydraulic Calcium Silicate-Based Sealers.“ Materials 14 (4): 1–11. doi: 10.3390/ma14040728.
  • , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , und . . „In situ science on Phobos with the Raman spectrometer for MMX (RAX): preliminary design and feasibility of Raman measurements.“ Earth, Planets and Space 73 (1). doi: 10.1186/s40623-021-01496-z.

  • , , , , , und . . „Mid-infrared spectroscopy of alkali feldspar samples for space application.“ Mineralogy and Petrology 114: 453–463.. doi: 10.1007/s00710-020-00709-9.
  • , , , , , , , , , , , , und . . „Studying the Composition and Mineralogy of the Hermean Surface with the Mercury Radiometer and Thermal Infrared Spectrometer (MERTIS) for the BepiColombo Mission: An Update.“ Space Science Reviews 216 (6): 110.. doi: 10.1007/s11214-020-00732-4.
  • , , , , , , , und . „Mid-infrared reflectance spectroscopy of aubrite components.“ Meteoritics and Planetary Science 55: 2080–2096.. doi: 10.1111/maps.13568.
  • , , , , , , , , , , , und . . „Space weathering by simulated micrometeorite bombardment on natural olivine and pyroxene: A coordinated IR and TEM study.“ Earth and Planetary Science Letters 530. doi: 10.1016/j.epsl.2019.115884.

  • , , , , , , , , , , , , , , , , , , , , , , und . „The Renchen L5-6 chondrite breccia – the first confirmed meteorite fall from Baden-Württemberg (Germany).“ Geochemistry – Chemie der Erde 79: 125525.. doi: 10.1016/j.chemer.2019.07.007.
  • , , , , , , , , , , , und . „Dust of comet 67P/Churyumov-Gerasimenko collected by Rosetta/MIDAS: classification and extension to the nanometre scale.“ Astronomy and Astrophysics 1. doi: 10.1051/0004-6361/201834851.
  • , , , , , , , , und . . „Mid-Infrared Spectroscopy of Laser-Produced Basalt Melts for Remote Sensing Application.“ Icarus 1. doi: 10.1016/j.icarus.2019.113410.
  • , , , , , , , , und . . „Effects of pulsed laser and plasma interaction on Fe, Ni, Ti, and their oxides for LIBS Raman analysis in extraterrestrial environments.“ Journal of Raman Spectroscopy 1. doi: 10.1002/jrs.5650.
  • , , , , , , und . . „Mid-infrared spectroscopy of planetary analogs: A database for planetary remote sensing.“ Icarus 324: 86–103. doi: 10.1016/j.icarus.2019.02.010.
  • . . „Raman characteristics of Alpine–Himalayan serpentine polymorphs: A case study of Khankuie ultramafic complex, southeast of Iran.“ Journal of Earth System Science 8 / 128 (B): 238. doi: 10.1007/s12040-019-1259-6.

  • , , , , , , , und . . „The Chelyabinsk meteorite: New insights from a comprehensive electron microscopy and Raman spectroscopy study with evidence for graphite in olivine of ordinary chondrites.“ Meteoritics & Planetary Science 53: 416–432.
  • . „Raman spectra of hydrous minerals investigated under various environmental conditions in preparation for planetary space missions.“ Journal of Raman Spectroscopy 49: 1830–1839.

  • , , , , , und . „Laser alteration on iron sulfides under various environmental conditions.“ Journal of Raman Spectroscopy 2017. doi: 10.1002/jrs.5083.
  • , , , , , , , , , , und . „Shifted Excitation Raman Difference Spectroscopy applied to extraterrestrial particles returned from the asteroid Itokawa.“ Planetary and Space Science 144: 106–111. doi: 10.1016/j.pss.2017.05.004.
  • , , , , , , und . „Laser-induced alteration of Raman spectra for micron-sized solid particles.“ Planetary and Space Science 2017 (138): 25–32. doi: 10.1016/j.pss.2017.02.001.
  • , , , , , und . . „IR Spectroscopy of Synthetic Glasses with Mercury Surface Composition: Analogs for Remote Sensing.“ Icarus 296: 123–138.

  • , , , , , , , , , , , und . „Aggregate dust particles at comet 67P/Churyumov–Gerasimenko.“ Nature 537 (7618). doi: 10.1038/nature19091.
  • , , , , , und . „Mid-infrared bi-directional reflectance spectroscopy of impact melt glasses and tektites.“ Icarus 278: 162–179. doi: 10.1016/j.icarus.2016.06.013.
  • , , , , , , , und . „Mid-infrared spectroscopy of impactites from the Nördlinger Ries impact crater.“ Icarus 264: 352–368. doi: 10.1016/j.icarus.2015.10.003.
  • , , , , , , , , , , , , , und . „Cosmochemical and spectroscopic properties of Northwest Africa 7325-A consortium study.“ Meteoritics and Planetary Science 51 (1): 3–30. doi: 10.1111/maps.12586.

  • , , , , und . „Mineralogical and Raman spectroscopy studies of natural olivines exposed to different planetary environments.“ Planetary and Space Science 104 (B): 163–172..

Forschungsartikel (Zeitschrift)
  • , , , , , , und . „The Developing of MERTIS as an advanced process – From the study up to the flight model.“ Proceedings of SPIE 8867. doi: 10.1117/12.2024375.
Forschungsartikel (Buchbeitrag)
  • , , , , , und . „Application of Raman Spectroscopy as in-situ technology for the search for life.“ In Habitability of Other Planets and Satellites., herausgegeben von J.and de Vera J.P. Seckbach. Springer VDI Verlag.

  • , , , , , und . „Optimizing the Detection of Carotene in Cyanobacteria in a Martian Regolith Analogue with a Raman Laser Spectrometer on ExoMars.“ Planetary and Space Science 60: 356–362.
  • , , , , , , , , und . „MERTIS - The Thermal Infrared Imaging Spectrometer Onboard of the Mercury Planetary Orbiter.“ Proceedings of ICSO 162.

  • , , , , , , und . . „A combined ToF-SIMS and EMP/SEM study of a three-phase sympletictite in the Los Angeles basaltic shergottite.“ Meteoritics and Planetary Science 44 (8): 1225–1237. doi: 10.1111/j.1945-5100.2009.tb01219.x.

  • , , , und . . „The Crystallization Age of Eucrite Zircon.“ Science 317 (5836): 345–347. doi: 10.1126/science.1140264.

  • , , , und . „TEM investigations of a ‘mysterite’ inclusion from the Krymka LL-chondrite.“ Meteoritics Planet. Science 2006 (41): 571–580.

  • , , , , , und . „Carbonaceous xenoliths in the Krymka LL3.1-chondrite: mysteries and established facts.“ Geochemica Cosmo. Acta 2005 (69): 2165–2182.

  • , , und . „TEM investigations on the monomict ureilites Jalanash and Hammadah al Hamra 064.“ Meteoritics Planet. Science 38: 145–156.

  • , , , , und . „Mineralogy of fine-grained material in the Krymka (LL3) chondrite.“ Meteoritics Planet. Science 36: 1067–1085.