TY - CONF A1 - Misra, Archismita T1 - Polyoxometalate Ionic Liquids (POMILs) as Protective Coatings for Cultural Heritage Against Acid Corrosion and Biodeterioration N2 - Corrosion of stone by acid rain anddeterioration from microbial biofilms are challenges worldwide present forindustrial or residential buildings as wellas cultural heritage, like statues orhistoric buildings. One option is the useof thin transparent films ofpolyoxometalate-based ionic liquids(POM-ILs). Stone samples were coatedwith hydrophobic, acid resistant POM-ILs which also have biocidal properties.1Exposure of the samples to simulatedacid rain showed negligible corrosioncompared to the significant deteriorationof unprotected samples (Fig 1. Left). Inaddition, the biocidal properties of thePOM-ILs suppress the formation ofbiofilms on coated stone slabs. Thecoating is mechanically stable and is notremoved even by harsh mechanical andchemical treatment. Following studiessuccessfully explored the effectiveness ofthe coating against lampenflora growingin the Pommery Champagne cellar 2 (Fig1. Right); and the long-termperformance of POM-ILs under outdoorenvironmental conditions 3. So, POM-ILs are already proven to possessremarkable anticorrosion andantimicrobial properties against aerobicmicroorganisms and being water-insoluble, they don’t get leached intoaquatic ecosystem, which is extremelybeneficial from an environmentalsustainability and toxicological point ofview. The current project aims tocontinue the journey on protecting thecultural heritage, shifting focus fromstones to metals and employ functionalPOM-IL nanocoatings to prevent MIC(Microbiologically Influenced Corrosion)of cultural heritage artefacts made ofmetal or metal alloy like carbon steel,brass, cast iron or bronze. Performanceof both the coating materials and coatingtechniques via optimization of theadhesion of the nanocoating on themetallic surface on the corrosion rateand corrosion products in the MICcaused by anaerobic microorganismslike methanogenic archaea or SulphateReducing Bacteria (SRB) would betested. The objective would be toestablish POM-ILs as efficientenvironmentally sustainablenanocoating materials againstbiocorrosion citing the already publishedsuccess stories; and sketch the ongoingendeavours and prospects of these veryefficient candidates in the context ofbiocorrosion T2 - International Biodeterioration and Biodegradation Symposium CY - Berlin, Germany DA - 09.09.2024 KW - Microbiologically influenced corrosion (MIC) KW - Polyoxometalate Ionic Liquid KW - Nanocoating KW - Cultural heritage PY - 2024 AN - OPUS4-64576 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CHAP A1 - Hahn, Oliver A1 - Steimer, Hans Gerhard ED - Christen, Felix ED - Vöhler, Martin T1 - Hölderlins Tinten. Röntgenfluoreszenzanalyse an Handschriften des Spätwerks N2 - Erstmalig in der Hölderlin-Forschung wurde mit dem Projekt der geisteswissenschaftlichen Methodik – über die Beachtung der Wasserzeichen hinaus – ein materialwissenschaftlicher Ansatz zur Seite gestellt, um Arbeitsphasen im Werk Friedrich Hölderlins sichtbar zu machen. Wesentlich ist dabei die Verzahnung von philologischer und naturwissenschaftlicher Perspektive. Wesentlicher Bestandteil der Messungen bildet das sogenannte Homburger Folioheft. Weiterhin wurden Briefe und Manuskripte aus den Beständen der Württembergische Landesbibliothek sowie zwei eigenhändige Gehaltsquittungen aus dem Hessischen Hauptstaatsarchiv Wiesbaden untersucht. Zwei in mehreren Manuskripten klar unterscheidbare Tinten lassen sich mit einiger Wahrscheinlichkeit biografisch mit dem Zeitraum zwischen Hölderlins Rückkehr aus der Schweiz im April 1801 und seinem Weggang nach Frankreich im Dezember dieses Jahres in Verbindung bringen. Für den in den untersuchten Handschriften häufigsten Tintentyp liegen datierbare Belege zwischen Januar 1803 und März 1804 vor, anzunehmen ist seine Verwendung zwischen Oktober 1802 und Juni 1804. Er dominiert auch im Homburger Folioheft. Eine vierte mehrfach vertretene Tinte gebraucht Hölderlin nach seiner Übersiedlung von Nürtingen nach Homburg. Sie findet sich im Folioheft und in einigen Einzelhandschriften. Damit können die in der Forschung umstrittenen Fragen geklärt werden, a) ob dem Dichter das Homburger Folioheft bei seinem zweiten Aufenthalt in Homburg zur Verfügung stand und b) ob überhaupt Werkhandschriften aus dieser Zeit erhalten sind. Darüber hinaus lässt sich über die Röntgenfluoreszenzanalyse der Arbeitsstand in den untersuchten Manuskripten zum Zeitpunkt des Ortswechsels im Juni 1804 genau angeben. Auch Einzelbefunde singulärer oder in nur wenigen Stücken belegter Tinten geben gelegentlich Anhaltspunkte zur Datierung. KW - Manuskript KW - Röntgenfluoreszenzanalyse KW - Eisengallustinte PY - 2026 SN - 978-3-7705-7073-7 SN - 0340-6849 VL - 44 SP - 287 EP - 335 PB - Brill CY - Paderborn AN - OPUS4-65600 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Misra, Archismita T1 - Polyoxometalate Ionic Liquids as Protective Coatings for Industrial Infrastructure and Cultural Heritage against Microbiologically Influenced Corrosion (MIC) N2 - Corrosion of stone and metal due to acid rain and biodeterioration poses significant challenges for industrial and residential infrastructure, as well as cultural heritage, including statues and historical artefacts. A promising mitigation strategy involves thin, transparent films of polyoxometalate-based ionic liquids (POM-ILs) as chemical shields. Stone samples coated with acid-resistant, biocidal POM-ILs exhibited negligible corrosion when exposed to simulated acid rain, in stark contrast to the severe deterioration of unprotected samples. Additionally, their biocidal properties effectively prevent biofilm formation on coated surfaces. Following studies successfully explored the effectiveness of the coating against lampenflora growing in the Pommery Champagne cellar; and the long-term performance of POM-ILs under outdoor environmental conditions. So, POM-ILs have already demonstrated remarkable anticorrosion and antimicrobial properties against aerobic microorganisms and, being water-insoluble, do not leach into aquatic ecosystem. The current research project repurposes the POM-ILs, extending their application to metals, specifically targeting microbiologically influenced corrosion (MIC) in cultural heritage artefacts made of brass, carbon steel, cast iron, and bronze. This involves optimizing nanocoating adhesion to the metal surface and evaluating its protective efficacy against MIC caused by anaerobic microorganisms such as methanogenic archaea and sulfate reducing bacteria (SRB). This presentation will highlight POM-ILs as sustainable, high-performance nanocoatings for biocorrosion mitigation. It will showcase published success stories, discuss ongoing research and proof-of-concept results, and explore future prospects for these advanced materials in safeguarding metal infrastructure and artefacts across different industrial sectors as well as in the context of cultural heritage conservation. T2 - 10th International symposium on applied microbiology and molecular biology in oil systems (ISMOS10) CY - Nashville, Tennessee, USA DA - 11.08.2025 KW - Polyoxometalates KW - Corrosion KW - Microbiologically Influenced Corrosion KW - Ionic Liquid PY - 2025 AN - OPUS4-64548 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Misra, Archismita T1 - Polyoxometalate Ionic Liquids as Protective Coatings for Industrial Infrastructure and Cultural Heritage against Microbiologically Influenced Corrosion (MIC) N2 - Corrosion of stone and metal due to acid rain and biodeterioration poses significant challenges for industrial and residential infrastructure, as well as cultural heritage, including statues and historical artefacts. A promising mitigation strategy involves thin, transparent films of polyoxometalate-based ionic liquids (POM-ILs) as chemical shields. Stone samples coated with acid-resistant, biocidal POM-ILs exhibited negligible corrosion when exposed to simulated acid rain, in stark contrast to the severe deterioration of unprotected samples. Additionally, their biocidal properties effectively prevent biofilm formation on coated surfaces. Following studies successfully explored the effectiveness of the coating against lampenflora growing in the Pommery Champagne cellar; and the long-term performance of POM-ILs under outdoor environmental conditions. So, POM-ILs have already demonstrated remarkable anticorrosion and antimicrobial properties against aerobic microorganisms and, being water-insoluble, do not leach into aquatic ecosystem. The current research project repurposes the POM-ILs, extending their application to metals, specifically targeting microbiologically influenced corrosion (MIC) in cultural heritage artefacts made of brass, carbon steel, cast iron, and bronze. This involves optimizing nanocoating adhesion to the metal surface and evaluating its protective efficacy against MIC caused by anaerobic microorganisms such as methanogenic archaea and sulfate reducing bacteria (SRB). This presentation will highlight POM-ILs as sustainable, high-performance nanocoatings for biocorrosion mitigation. It will showcase published success stories, discuss ongoing research and proof-of-concept results, and explore future prospects for these advanced materials in safeguarding metal infrastructure and artefacts across different industrial sectors as well as in the context of cultural heritage conservation. T2 - Euro-MIC COST Action - Closing Workshop Conference CY - Horsens, Denmark DA - 17.09.2025 KW - Polyoxometalates KW - Corrosion KW - Microbiologically Influenced Corrosion KW - Ionic Liquid PY - 2025 AN - OPUS4-64549 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Koerdt, Andrea T1 - Methanogenic Archaea as Drivers of Microbiologically Influenced Corrosion N2 - Microbiologically influenced corrosion (MIC) poses a significant threat to metallic infrastructure across sectors—from energy and marine environments to cultural heritage conservation and emerging technologies such as underground hydrogen storage (UHS). Methanogenic archaea have emerged as key contributors to corrosion under anaerobic conditions, capable of directly interacting with metal surfaces via extracellular electron transfer. This presentation provides an overview of our recent work on identifying, characterizing, and mitigating MIC caused by methanogens. We focus on the genetic differentiation of methanogenic strains, highlighting a novel class of [Ni/Fe]-hydrogenases identified exclusively in corrosive methanogens to date. These enzymes may serve as molecular markers for MIC risk assessment due to their unique sequence and functional properties. Additionally, we explore strain-specific differences in hydrogenase glycosylation and correlate these with observed variations in corrosion severity, biofilm formation, microbial surface interactions, and potentially enzyme stability. These findings suggest glycosylation may play a previously underappreciated role in MIC dynamics. To mitigate MIC, we investigate polyoxometalate-based (POM) coatings—originally developed for protecting stone-based artifacts—which we now apply to metal surfaces. These multifunctional coatings effectively inhibit biofilm formation and microbial activity, offering a promising strategy for corrosion control. Furthermore, we have developed customized test systems that simulate realistic environmental conditions, including high-pressure settings and dynamic flow regimes with varying velocities. These platforms allow for controlled evaluation of microbial corrosion under conditions relevant to underground hydrogen storage and marine environments, where salinity, pressure, and microbial activity interact. Our findings demonstrate that integrating molecular diagnostics, surface engineering, and advanced simulation platforms provides new insights into MIC mechanisms and opens avenues for predictive diagnostics and sustainable corrosion control strategies in industrial applications. T2 - Annual Conference of the Association for General and Applied Microbiology CY - Berlin, Germany DA - 22.03.2026 KW - MIC KW - Microbiologically influenced corrosion KW - Laboratory testing KW - [Ni/Fe]-hydrogenase KW - Hochdruckbehälter KW - Biocorrosion PY - 2026 UR - https://programme.conventus.de/en/vaam-2026/program/program-points/6b386376-ad06-4ac3-af22-c1c663316939 AN - OPUS4-65812 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -