Projekte
- Verbundvorhaben BepiColombo MERTIS: Inbetriebnahme und Observation; Teilvorhaben Universität Münster ( – )
Beteiligung in sonstigem Verbundvorhaben: Bundesministerium für Wirtschaft und Klimaschutz | Förderkennzeichen: 50QW2502A - BC MERTIS: Cruise Phase Teil 2 - Teilvorhaben Labormessung und Missionsunterstützung ( – )
Beteiligung in sonstigem Verbundvorhaben: Bundesministerium für Wirtschaft und Klimaschutz | Förderkennzeichen: 50QW2201A - BC MERTIS: Systemtests, Start, Inbetriebnahme, Cruise-Phase Teil 1 ( – )
Beteiligung in sonstigem Verbundvorhaben: Bundesministerium für Wirtschaft und Klimaschutz | Förderkennzeichen: 50QW1701 - MERTIS – Mercury Radiometer & Thermal Infrared Spectrometer, Phase E/F1 ( – )
Beteiligung in sonstigem Verbundvorhaben: Bundesministerium für Wirtschaft und Klimaschutz | Förderkennzeichen: 50QW1302 - LIBS/RAMAN - MINI-LIBS-Lasersystem: Phase B ( – )
Beteiligung an einem BMBF-Verbund: Bundesministerium für Bildung und Forschung | Förderkennzeichen: 50QX0602
- Verbundvorhaben BepiColombo MERTIS: Inbetriebnahme und Observation; Teilvorhaben Universität Münster ( – )
Publikationen
- Morlok, Andreas, Sehlke, Alexander, Stojic, Aleksandra N., u. a. . „Synthetic analogs for lava flows on the surface of Mercury: A mid-infrared study.“ Icarus, Nr. 415 116078. doi: 10.1016/j.icarus.2024.116078.
- Weber, I, Pavlov, SG, Böttger, U, und Reitze, MP. . „Alteration in the Raman spectra of characteristic rock-forming silicate mixtures due to micrometeorite bombardment.“ Journal of Raman Spectroscopy, Nr. 55 (8): 901–913. doi: 10.1002/jrs.6676.
- Reitze, MP, Renggli, C, Morlok, A, u. a. . „Crystallographic and Mid-Infrared Spectroscopic Properties of the CaS-MgS Solid Solution.“ Journal of Geophysical Research: Planets, Nr. 129 (8): e2024JE0–e2024JE008483. doi: 10.1029/2024JE008483.
- Sergey, G.Pavlov, Iris, Weber, Ute, Böttger, Ulrich, Schade, und and, Jörg Fritz. . „Prediction of Olivine Composition Under Limited Calibration Inputs: Comparative Study of Mid-Infrared Reflection, Raman Scattering, and Laser-Induced Plasma Spectroscopies.“ Applied Spectroscopy, Nr. 2024: 1–17. doi: 10.1177/00037028241305162.
- Stojic, A.N., Weber, I., Morlok, A., u. a. . „Simulation of surface regolith gardening and impact associated melt layer production under ns-pulsed laser ablation.“ Icarus, Nr. 391 doi: 10.1016/j.icarus.2022.115344.
- Morlok, A, Renggli, C, Charlier, B, u. a. . „A mid-infrared study of synthetic glass and crystal mixtures analog to the geochemical terranes on mercury.“ Icarus, Nr. 396: 115498. doi: 10.1016/j.icarus.2023.115498.
- Reitze, MP, Weber, I, Morlok, A, u. a. . „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, Nr. 10 (6): e2023EA002903. doi: 10.1029/2023EA002903.
- Weber, I, Reitze, MP, Morlok, A, u. a. . „Mid-IR spectral properties of different surfaces of silicate mixtures before and after excimer laser irradiation.“ Icarus, Nr. 404: 115683–115683. doi: 10.1016/j.icarus.2023.115683.
- Renggli, CJ, Stojic, AN, Morlok, A, u. a. . „Mid-infrared spectroscopy of sulfidation reaction products and implications for sulfur on Mercury.“ Journal of Geophysical Research: Planets, Nr. 128 (12): e2023JE0. doi: 10.1029/2023JE007895.
- Renggli, CJ, Klemme, S, Morlok, A, u. a. . „Sulfides and hollows formed on Mercury’s surface by reactions with reducing S-rich gases.“ Earth and Planetary Science Letters, Nr. 593: 117647. doi: 10.1016/j.epsl.2022.117647.
- Weber, I, Böttger, U, Hanke, F, u. a. . „Space weathering simulation of micrometeorite bombardment on silicates and their mixture for space application.“ Journal of Raman Spectroscopy, Nr. 53 (3): 411–419. doi: 10.1002/jrs.6162.
- Morlok, A, Renggli, C, Charlier, B, u. a. . „Mid-infrared reflectance spectroscopy of synthetic glass analogs for mercury surface studies.“ Icarus, Nr. 361: 114363. doi: 10.1016/j.icarus.2021.114363.
- Stojic, AN, Morlok, A, Tollan, P, u. a. . „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, Nr. 357: 114162. doi: 10.1016/j.icarus.2020.114162.
- Weber, I, Reitze, MP, Heeger, M, u. a. . „The effect of excimer laser irradiation on mid-IR spectra of mineral mixtures for remote sensing.“ Earth and Planetary Science Letters, Nr. 569: 117072. doi: 10.1016/j.epsl.2021.117072.
- Reitze, MP, Weber, I, Morlok, A, u. a. . „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), Nr. 126 (8): e06832. doi: 10.1029/2021JE006832.
- Donnermeyer, D., Ibing, M., Bürklein, S., Weber, I., Reitze, M.P., und Schäfer, E. . „Physico-Chemical Investigation of Endodontic Sealers Exposed to Simulated Intracanal Heat Application: Hydraulic Calcium Silicate-Based Sealers.“ Materials, Nr. 14 (4): 1–11. doi: 10.3390/ma14040728.
- Cho, Yuichiro, Bottger, Ute, Rull, Fernando, u. a. . „In situ science on Phobos with the Raman spectrometer for MMX (RAX): preliminary design and feasibility of Raman measurements.“ Earth, Planets and Space, Nr. 73 (1) doi: 10.1186/s40623-021-01496-z.
- Reitze, MP, Weber, I, Kroll, H, Morlok, A, Hiesinger, H, und Helbert, J. . „Mid-infrared spectroscopy of alkali feldspar samples for space application.“ Mineralogy and Petrology, Nr. 114: 453–463. doi: 10.1007/s00710-020-00709-9.
- Hiesinger, H, Helbert, J, Alemanno, G, u. a. . „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, Nr. 216 (6): 110. doi: 10.1007/s11214-020-00732-4.
- Morlok, A., Weber, I., Stojic, A.N., u. a. . „Mid-infrared reflectance spectroscopy of aubrite components.“ Meteoritics and Planetary Science, Nr. 55: 2080–2096. doi: 10.1111/maps.13568.
- Weber, I, Stojic, A, Morlok, A, u. a. . „Space weathering by simulated micrometeorite bombardment on natural olivine and pyroxene: A coordinated IR and TEM study.“ Earth and Planetary Science Letters, Nr. 530 doi: 10.1016/j.epsl.2019.115884.
- Bischoff, A., Barrat, J.-A., Berndt, J., u. a. . „The Renchen L5-6 chondrite breccia – the first confirmed meteorite fall from Baden-Württemberg (Germany).“ Geochemistry – Chemie der Erde, Nr. 79: 125525. doi: 10.1016/j.chemer.2019.07.007.
- Mannel, T., Bentley, M.S., Boakes, P.S., u. a. . „Dust of comet 67P/Churyumov-Gerasimenko collected by Rosetta/MIDAS: classification and extension to the nanometre scale.“ Astronomy and Astrophysics, Nr. 1 doi: 10.1051/0004-6361/201834851.
- Morlok, A, Klemme, S, Weber, I, u. a. . „Mid-infrared spectroscopy of planetary analogs: A database for planetary remote sensing.“ Icarus, Nr. 324: 86–103. doi: 10.1016/j.icarus.2019.02.010.
- Bahrambeygi, Bahram; Moeinzadeh, Hesam; Prakash, Divya; Weber, Iris. . „Raman characteristics of Alpine–Himalayan serpentine polymorphs: A case study of Khankuie ultramafic complex, southeast of Iran.“ Journal of Earth System Science, Nr. 8 / 128 (B): 238. doi: 10.1007/s12040-019-1259-6.
- David, KAET ER, A., ZIEM ANN Martin, Ute, BÖTTG ER, u. a. . „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, Nr. 53: 416–432.
- K., Weber Iris | Böttger Ute| Pavlov Sergey G. | Stojic Aleksandra | Hübers Heinz‐Wilhelm | Jessberger Elmar. . „Raman spectra of hydrous minerals investigated under various environmental conditions in preparation for planetary space missions.“ Journal of Raman Spectroscopy, Nr. 49: 1830–1839.
- Weber, I., Böttger, U., Pavlov, S.G., Hübers, H.-W., Hiesinger, H., und Jessberger, E.K. . „Laser alteration on iron sulfides under various environmental conditions.“ Journal of Raman Spectroscopy, Nr. 2017 doi: 10.1002/jrs.5083.
- Böttger, U., Maiwald, M., Hanke, F., u. a. . „Shifted Excitation Raman Difference Spectroscopy applied to extraterrestrial particles returned from the asteroid Itokawa.“ Planetary and Space Science, Nr. 144: 106–111. doi: 10.1016/j.pss.2017.05.004.
- Böttger, U., Pavlov, S.G., Deßmann, N., u. a. . „Laser-induced alteration of Raman spectra for micron-sized solid particles.“ Planetary and Space Science, Nr. 2017 (138): 25–32. doi: 10.1016/j.pss.2017.02.001.
- Morlok, Andreas, Klemme, Stephan, Weber, Iris, Stojic, Aleksandra, Sohn, Martin, und Hiesinger, Harald. . „IR Spectroscopy of Synthetic Glasses with Mercury Surface Composition: Analogs for Remote Sensing.“ Icarus, Nr. 296: 123–138.
- Bentley, M.S., Schmied, R., Mannel, T., u. a. . „Aggregate dust particles at comet 67P/Churyumov–Gerasimenko.“ Nature, Nr. 537 (7618) doi: 10.1038/nature19091.
- Morlok, A., Stojic, A., Weber, I., Hiesinger, H., Zanetti, M., und Helbert, J. . „Mid-infrared bi-directional reflectance spectroscopy of impact melt glasses and tektites.“ Icarus, Nr. 278: 162–179. doi: 10.1016/j.icarus.2016.06.013.
- Morlok, A., Stojic, A., Dittmar, I., u. a. . „Mid-infrared spectroscopy of impactites from the Nördlinger Ries impact crater.“ Icarus, Nr. 264: 352–368. doi: 10.1016/j.icarus.2015.10.003.
- Weber, I., Morlok, A., Bischoff, A., u. a. . „Cosmochemical and spectroscopic properties of Northwest Africa 7325-A consortium study.“ Meteoritics and Planetary Science, Nr. 51 (1): 3–30. doi: 10.1111/maps.12586.
- Weber, I., Böttger, U., Pavlov, S.G., Jessberger, E.K., und Hübers, H.-W. . „Mineralogical and Raman spectroscopy studies of natural olivines exposed to different planetary environments.“ Planetary and Space Science, Nr. 104 (B): 163–172.
Forschungsartikel (Zeitschriften)
- Peter, G., Helbert, J., Hiesinger, H., u. a. . „The Developing of MERTIS as an advanced process – From the study up to the flight model.“ Proceedings of SPIE, Nr. 8867 doi: 10.1117/12.2024375.
Forschungsartikel (Buchbeiträge)
- Böttger, U., Hermelink, A., de Vera, J.-P., Fritz, J., Weber, I., und Schulze-Makuch, D.and Hübers H.W. . „Application of Raman Spectroscopy as in-situ technology for the search for life.“ In Habitability of Other Planets and Satellites., herausgegeben von Seckbach J. and de Vera J.P.. Düsseldorf: Springer VDI Verlag.
- Böttger, U., de Vera, J.-P., Fritz, J., Weber, I., Hübers, H.-W., und and, Schulze-Makuch D. . „Optimizing the Detection of Carotene in Cyanobacteria in a Martian Regolith Analogue with a Raman Laser Spectrometer on ExoMars.“ Planetary and Space Science, Nr. 60: 356–362.
- Zeh, T., Peter, G., Walter, I., u. a. . „MERTIS - The Thermal Infrared Imaging Spectrometer Onboard of the Mercury Planetary Orbiter.“ Proceedings of ICSO, Nr. 162
- Rost, D, Stephan, T, Greshake, A, u. a. . „A combined ToF-SIMS and EMP/SEM study of a three-phase sympletictite in the Los Angeles basaltic shergottite.“ Meteoritics and Planetary Science, Nr. 44 (8): 1225–1237. doi: 10.1111/j.1945-5100.2009.tb01219.x.
- Srinivasan, G, Whitehouse, MJ, Weber, I, und Yamaguchi, A. . „The Crystallization Age of Eucrite Zircon.“ Science, Nr. 317 (5836): 345–347. doi: 10.1126/science.1140264.
- Weber, I., Semenenko, V.P., Stephan, T., und Jessberger, E.K. . „TEM investigations of a “mysterite” inclusion from the Krymka LL-chondrite.“ Meteoritics Planet. Science, Nr. 2006 (41): 571–580.
- Semenenko, V.P., Jessberger, E.K., Chaussidon, M., Weber, I., Stephan, T., und Wies, C. . „Carbonaceous xenoliths in the Krymka LL3.1-chondrite: mysteries and established facts.“ Geochemica Cosmo. Acta, Nr. 2005 (69): 2165–2182.
- Weber, I., Bischoff, A., und Weber, D. . „TEM investigations on the monomict ureilites Jalanash and Hammadah al Hamra 064.“ Meteoritics Planet. Science, Nr. 38: 145–156.
- Semenenko, V.P., Bischoff, A., Weber, I., Perron, C., und Girich, A.L. . „Mineralogy of fine-grained material in the Krymka (LL3) chondrite.“ Meteoritics Planet. Science, Nr. 36: 1067–1085.
Dr. Iris Weber
