TY - CONF A1 - Zöllner, Moritz T1 - Raman spectroscopy as a thermometric tool for the analysis of mortar binders N2 - The reconstruction of the thermal history of anthropogenic materials is crucial for understanding historical manufacturing techniques. Preparatory parameters such as firing temperature, heating and cooling rates, soaking time, and kiln atmosphere significantly affect the chemical and structural properties of the final product. Comparing historical materials with replicas produced under well-defined laboratory conditions helps identify indicators for these parameters. This comparative approach is greatly enhanced by spectroscopic analyses. Raman spectroscopy has proven to be a powerful tool in this field due to its high sensitivity to crystal-chemical alterations and high spatial resolution. The results of thermal experiments with gypsum and carbonate raw materials at burning temperatures up to 1000 °C are presented. Precise measurements of Raman peak positions and Raman band widths enable the differentiation of chemically similar phases. Changes in the Raman band parameters are evident even after the subsequent hydration-hardening process of the fired samples, allowing the spectral discrimination of samples treated at different temperatures steps. These findings from the thermal experiments are further applied to Raman micro-spectroscopic mappings of medieval and reenacted mortars. The extracted Raman band parameters show comparable values between the experimental and real-life samples, proving Raman spectroscopy as a suitable tool for estimating the burning temperature and thus elucidating the manufacturing procedures of anthropogenic materials. T2 - Jahrestagung Archäometrie und Denkmalpflege 2025 CY - Dresden, Germany DA - 18.03.2025 KW - Raman spectroscopy KW - Mineral thermometry PY - 2025 AN - OPUS4-62778 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Zöllner, Moritz T. A1 - Dariz, Petra A1 - Riedel, Jens A1 - Schmid, Thomas T1 - Dolomite and Mg Calcite as Mineral Thermometers in Mortar Binders. A High Resolution Raman Spectroscopic Study N2 - This paper suggests the use of high‐resolution Raman scattering bands of MgCa carbonates as posteriori thermometer minerals in archaeometric studies. Therefore, the thermal behavior of two dolomite samples and the hydration and carbonation reaction in air of the decomposition products were investigated by Raman microspectroscopy. The increase in the calcination temperature resulted in the formation of – Raman silent MgO and – inert Mg calcite at 700°C–750°C. In contrast, the decarbonation, hydration, and recarbonation of sample material exposed to 750°C–900°C in a muffle furnace led to the appearance of Mg‐free calcite. High spectral resolution Raman spectroscopy enabled a spectral distinction between these two groups due to differences in the band parameters (peak position, bandwidth) of the vibrational (v1, v4, L) modes of calcite. In combination with Raman microspectroscopic mapping, this spectral information represents a new approach for the estimation of burning temperatures of medieval high‐fired gypsum mortars via natural dolomite impurities. Thus, the results of this work highlight the importance and potential of Raman microspectroscopy as a thermometric tool for elucidating the thermal history of anthropogenic fired materials, with potential applications for archaeometry and art technology, as well as for quality controls in the frame of the production of mineral mortar binders and ceramics or bricks, respectively. KW - Mineral thermometry KW - Raman spectroscopy KW - Dolomite KW - High-fired gypsum mortar PY - 2025 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-630270 DO - https://doi.org/10.1002/jrs.6810 SN - 1097-4555 SP - 1 EP - 13 PB - Wiley AN - OPUS4-63027 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Avci, Fatma T1 - Characterization of black mass by X-Ray fluorescence spectroscopy N2 - X-ray fluorescence analysis (XRF) is a method of elemental analysis that is used either as wavelength dispersive XRF (WDXRF) or energy dispersive XRF (EDXRF). Using EDXRF, it is possible to analyze samples within a few minutes without time-consuming sample preparation. This makes the method potentially suitable for analyzing larger sample quantities under industrial conditions. However, the XRF method is matrix-dependent. Depending on the cathode material of the recycled batteries, there are significant differences in the composition of the resulting black mass. This means that specific calibration models must be developed for different types of black mass. The aim of our work is to use the EDXRF method to reliably analyze black mass of different origins with regard to the elements that are particularly interesting for recycling: nickel (Ni), manganese (Mn), cobalt (Co), aluminum (Al), iron (Fe), zinc (Zn), silicon (Si), copper (Cu), and phosphorus (P). Based on the different mass fractions of the elements mentioned, black masses from used lithium-ion batteries can be divided into three groups according to the cathode chemistry: lithium nickel manganese cobalt oxide (NMC), lithium cobalt oxide (LCO), and mixed chemistries (MC), the latter of which may contain lithium iron phosphate (LFP). The division into groups is necessary to determine the matrices and thus select the appropriate calibration model for the analysis of the EDXRF data in order to achieve the most accurate determination of the elemental content possible. Reference analyses are performed using WDXRF. The score plots obtained by PLS-DA of the specific elemental composition of the black masses examined to date by both WDXRF and EDXRF reveal a correct separation of the BM matrix types LCO, NMC, and MC. Our preliminary results with test samples yielded 100 % correct predictions with both data sets. However, only two matrix types, NMC and LCO, have been tested with the EDXRF data so far. Data for MC is pending as work progresses. T2 - Doctoral seminar 2025 - Working Group Chemometrics and Quality Assurance (GDCh) CY - Hamburg, Germany DA - 11.09.2025 KW - Black Mass KW - XRF Spectroscopy KW - Chemometric Modeling KW - PLS-DA PY - 2025 AN - OPUS4-64095 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Paul, Andrea T1 - Classification of mineral wool by spectroscopic methods N2 - Mineral wools from demolition projects are currently disposed of in landfills. To reintroduce them into the material cycle, it is essential (i) to distinguish between glass wool (GW) and rock wool (RW), (ii) to detect foreign substances, and (iii) to assess the period of production (before/after 2000) to identify “old”, potentially carcinogenic wool. Both X-ray and NIR spectroscopic methods are being developed for this purpose and handheld (portable) devices are being tested for field application. To this end, more than 160 mineral wool samples were collected and examined. Since no reference information on the “material” or “age” was available for many samples, we characterized the elemental composition of the mineral wool using wavelength dispersive X-ray fluorescence spectroscopy (WDXRF). For this purpose, pellets and melt tablets were evaluated using a spectrometer-integrated semi-quantitative approach (Omnian). The resulting mass fractions of SiO2, Al2O3, CaO, MgO, K2O, Na2O, Fe2O3, and TiO2 could be used to distinguish between GW and RW and, in the case of RW, also whether it was “old” or “new” wool according to VDI guideline 3492. In some cases, however, ambiguous results were obtained in the material classification. Therefore, a principal component analysis (PCA) was performed enabling the identification of possible outliers and subgroups. Since the classification of “old” and “new” rock wool based on VDI 3492 yielded many unclear results, with the help of partial least squares discriminant analysis (PLS-DA), the classification was significantly improved [1]. WDXRF spectroscopy delivers accurate results, however, the spectrometers are not mobile and require time demanding sample preparation (pellets, melt tablets). Therefore, it was examined whether useful results could be achieved with portable energy dispersive (EDXRF) spectrometers. For this purpose, a portable EDXRF spectrometer (pXRF) was calibrated based on the WDXRF results. In general, oxides of the lighter elements (MgO and Na2O) could not be analyzed with EDXRF. Although prediction of oxide contents in melt tablets was successful by this approach, no reliable results could be obtained when predicting the oxide content of natural mineral wools. Attempts to perform calibration based on natural wools also failed. However, PCA of EDXRF spectra in the “Light” range was able to distinguish between GW and RW, even with “real-world” samples from so-called Bigbags [2], in which mineral wool in Germany is collected in recycling centers. In addition to XRF, a previous study has already demonstrated that at least the distinction between GW and RW can be performed using near-infrared spectroscopy (NIR) [3]. For this reason, measurements were also carried out with a handheld NIR device (pNIR) in parallel with the pXRF investigations. Using PLS-DA, it was possible to classify RW and GW using the handheld device with a sensitivity and specificity of 95% for 38 test samples, including wool from big bags. pNIR also remains sensitive when it comes to determining non-metallic “foreign materials.” For example, materials such as brick, plaster, concrete, and organic fibers could be detected by SIMCA as “non-mineral” wool with a specificity of 92% for 19 tested interferents [2]. Questions regarding the detection of metallic impurities based on EDXRF measurements are the subject of ongoing investigations. T2 - Doctoral Seminar of the Working Group Chemometrics & Quality Assurance CY - Hamburg, Germany DA - 10.09.2025 KW - Mineral wool KW - X-ray fluorescence KW - Data analyis PY - 2025 AN - OPUS4-64077 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Meyer, Klas T1 - On-line monitoring of polyhydroxyalkanoate extraction process using compact NMR spectroscopy N2 - Portable benchtop NMR spectrometers enable real-time process and reaction monitoring in contrast to conventional laboratory based off-line gas chromatography or high-field NMR measurements. In this study, benchtop NMR spectroscopy is demonstrated as a process analytical technology (PAT) tool for the application of the solvent extraction step in downstream processing of polyhydroxyalkanoate (PHA) biopolymers. These are one of the few thermoplastic polymers synthesized 100 % via biotechnological routes which fully biodegrade in common natural environments. This makes them excellent candidate materials for sustainable replacement of conventional plastic materials. Online NMR experiments were conducted using a fully automated setup, employing commercially available PTFE tubing as a flow-cell assembly. Extraction was carried out in a thermostated stirred batch reactor in lab-scale. Single-scan NMR spectra allowed continuous monitoring of the extraction of the PHA copolymer poly(hydroxybutyrate-co-hydroxyhexanoate) containing 13.5 mol-% hydroxyhexanoate from Ralstonia eutropha biomass. Extractions were performed in chloroform and acetone across lyophilized cell loadings ranging from 20 to 120 g/L. The reproducibility and reliability of compact NMR spectroscopy closely matched that of parallel high-field NMR measurements. A strong correlation was observed between online low-field NMR data and offline gas chromatography (GC) analysis. The study highlights the versatility of compact NMR for process monitoring, facilitating endpoint determination and enhancing extraction efficiency by optimizing process parameters. Steady-state conditions were achieved within 6 to 10 minutes for chloroform and acetone, respectively, underscoring the method’s value in supporting downstream process development and optimization for PHA recovery. T2 - qNMR Summit Europe 2025 CY - Bari, Italy DA - 19.11.2025 KW - NMR Spectroscopy KW - Extraction KW - Downstream processing KW - Benchtop-NMR PY - 2025 AN - OPUS4-64920 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Steinbeck, Christoph A1 - Jung, Nicole A1 - Bach, Felix A1 - Neumann, Steffen A1 - Herres-Pawlis, Sonja A1 - Liermann, Johannes A1 - Koepler, Oliver A1 - Bannwarth, Christoph A1 - Bender, Theo A1 - Bocklitz, Thomas A1 - Boehm, Franziska A1 - Bonatto Minella, Christian A1 - Biedermann, Frank A1 - Brack, Werner A1 - Cunha, Ricardo A1 - Czodrowski, Paul A1 - Eberl, Franziska A1 - Engel, Thomas A1 - Engstfeld, Albert A1 - Fischer, Tillmann G. A1 - Friedrich, Pascal A1 - Glorious, Frank A1 - Golub, Benjamin A1 - Grathwol, Christoph A1 - Haag, Rainer A1 - Hunold, Johannes A1 - Jacob, Christoph A1 - Johannsen, Jochen A1 - Jollife, John A1 - Kast, Stefan A1 - Kettner, Carsten A1 - Kuhn, Stefan A1 - Lanza, Giacomo A1 - Lisec, Jan A1 - Manolikakes, Georg A1 - Mata, Ricardo A1 - Meiler, Jens A1 - Müller, Matthias A1 - Müller-Pfefferkorn, Ralph A1 - Ortmeyer, Jochen A1 - Patterson, Wendy A1 - Pleiss, Jürgen A1 - Riedel, Annalisa A1 - Riedel, Jens A1 - Schatzschneider, Ulrich A1 - Schuster, Leonie A1 - Seeberger, Peter A1 - Seibert, Johann-Nikolaus A1 - Stadler, Peter A1 - Zeitler, Kirsten T1 - Proposal NFDI4Chem 2025-2030 In the National Research Data Infrastructure (NFDI) — Our Vision: All Chemists Publish FAIR Data N2 - The first funding period of NFDI4Chem established a robust foundation for research data management (RDM) in chemistry by promoting FAIR data principles and creating a cohesive infrastructure to capture well-annotated data early in the lab through electronic lab notebooks (ELNs) and making this data available in public repositories. Key achievements include standardised data formats and metadata, a federated repository environment, and improved data visibility and accessibility. Training programs and outreach have significantly increased awareness and adoption of best RDM practices. In the second funding period, the consortium aims to advance these achievements by consolidating this infrastructure, developing a model for its sustainable maintenance and operation, and fostering cultural change for its widespread adoption. Goals include ensuring seamless data workflows from laboratories to open repositories, enhancing interoperability, and supporting innovative research through AI-ready data. The work plan is organised into six task areas (TAs). TA1 (Management) provides leadership and supports all other TAs in achieving their objectives. TA2 (Smart Lab) aims to develop a fully digital research environment, including an ELN as a modular platform. This environment will support data collection, management, storage, analysis, and sharing. Integrating devices and external resources will enable seamless data transfer to repositories. TA3 (Repositories) will consolidate the repository ecosystem. The goal is to integrate repositories into a federated system for better accessibility and interoperability, ensuring long-term data availability and sustainability. TA4 (Metadata, Data Standards, and Publication Standards) focuses on developing and promoting new data and metadata standards in an international community process. This includes applying ontologies to create a semantic foundation for linking research data, making it machine-readable and enabling knowledge graphs. TA5 (Community and Training) is dedicated to fostering a cultural shift towards digital chemistry through continuous engagement, collecting requirements, and providing extensive training and support through workshops and open education resources. It will promote FAIR-compliant machine learning applications, embedding RDM into academic curricula to ensure future scientists are well-versed in these practices. TA6 (Synergies and Cross-Cutting Topics) aims to enhance collaboration across NFDI consortia and beyond. This includes developing ontologies, terminology services, the search service, and other cross-cutting solutions, integrating these developments into existing infrastructure, enabling interdisciplinary data harmonisation and fostering machine learning applications. KW - Research Data Management KW - FAIR KW - Chemistry PY - 2025 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-648540 DO - https://doi.org/10.3897/rio.11.e177037 SN - 2367-7163 VL - 11 SP - 1 EP - 100 PB - Pensoft Publishers AN - OPUS4-64854 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - You, Yi T1 - MicroPhase: An Open-Source Flexible Ultrasonic Phased Array Based on Microcontrollers N2 - The use of resonant acoustic fields has gained significant attention due to their capability for contactless manipulation of objects in the open air and other media, referred to as ultrasonic levitation. To overcome the limitations in air-coupling efficiency, Langevin-type ultrasonic transducers are often employed, as they can operate at relatively high power, ranging from several tens to thousands of watts. However, such platforms typically lack the ability to move acoustically trapped objects efficiently, often requiring additional mechanical structures for even basic motion control, such as translation. In contrast, ultrasonic phased arrays offer clear advantages by leveraging their inherent beam-forming capabilities, which allows for dynamic shaping of acoustic fields in situ. Unfortunately, phased array control systems are not readily accessible, particularly when specific geometric or performance criteria must be met. Most commercially available phased array controllers are designed to operate in the MHz range; those are suitable only for high acoustic impedance media, such as water. Conversely, platforms for open-air applications typically utilize ultrasonic speakers operating at 40 kHz. In both cases, these systems are built on field-programmable gate arrays (FPGAs). However, interfacing FPGAs with computers and developing FPGA firmware (e.g., in VHDL) can be technically demanding, and analog components such as power amplifiers further complicate the system design. These limitations severely restrained the use of flexible ultrasonic levitations in analytical chemistry. Here, we present a novel platform for controlling ultrasonic phased arrays using single modern microcontrollers. This platform leverages the connectivity features of microcontrollers, allowing straightforward interfacing with computers via common programming languages (e.g., Python). The system employs fast direct memory access (DMA) to control up-to 256 ultrasonic transducers with a resolution of 0.5 µs, which is suitable for air-based applications in the 20-50 kHz range. Additionally, the platform can interface with traditional Langevin-type transducers, enabling their conversion into phased arrays. Optical characterization of acoustic field optimization is also discussed. T2 - ANAKON 2025 CY - Leipzig, Germany DA - 10.03.2025 KW - Acoustic ion manipulation PY - 2025 AN - OPUS4-64112 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Li, Xunyu A1 - Riedel, Jens A1 - You, Yi T1 - Spectrally resolved lithium isotope quantification through high-resolution spatial heterodyne spectrometry N2 - Isotope ratio determination of lithium is increasingly important in fields ranging from geochemistry to battery diagnostics. While mass spectrometry remains the gold standard, it is costly, cumbersome, and incompatible with portable or inline implementations. Optical emission spectroscopy presents an appealing alternative. However, it is traditionally limited by insufficient spectral resolution or resolving power to separate lithium isotope emissions due to their generalized designs for a wide spectral range; this often requires overly complicated algorithms to overcome the instrumental drawbacks. (79) Results Here, we report a high-resolution optical method for lithium isotope quantification using a custom-built spatial heterodyne spectrometer (SHS) combined with a reduced-pressure glow discharge source. This configuration yielded a resolving power of 189,000 and enabled baseline resolution of lithium d-line emission features even without the need for preliminary data processing. Despite the inherent low sensitivity of SHS, a detection limit of 30 pmol was achieved using a standard industrial camera. To improve quantitative accuracy, we introduced a deconvolution-based spectral lineshape recovery technique alongside a bootstrapping-based error propagation strategy. These methods facilitated robust isotope ratio calibration using both peak-height and peak-area metrics. The SHS platform additionally enabled the determination of relative transition probabilities, suggesting the feasibility of calibration-free operation. This work demonstrates the practical viability of SHS for high-specificity, high-resolution lithium isotope analysis. The approach is compact, potentially field-deployable, and adaptable to other elements with optically resolvable isotope shifts, offering a route toward accessible and calibration-free optical isotopic analyses. KW - SHS KW - Isotope KW - High-resolution spectroscopy PY - 2025 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-635139 DO - https://doi.org/10.1016/j.aca.2025.344329 SN - 1873-4324 VL - 1368 SP - 1 EP - 8 PB - Elsevier B.V. AN - OPUS4-63513 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Mohan, M. A1 - Prochazka, D. A1 - You, Yi A1 - Riedel, Jens A1 - Gornushkin, Igor A1 - Rocnakova, I. A1 - Papula, M. A1 - Porízka, P. A1 - Kaizer, J. T1 - Investigating plasma morphology at material boundaries under varying ambient pressures N2 - Laser-Induced Breakdown Spectroscopy (LIBS) is a widely used technique for elemental analysis. The analysis of the obtained LIBS spectra generally assumes plasma homogeneity. However, using focused laser beams for interrogation, LIBS probes materials on the microscale and is, thus, prone to artefacts from sample heterogeneities on the micrometer scale. An ablation at a material boundary of two matrices may result in a significant inhomogeneity in the plasma plume, which can severely impact the accuracy of quantitative analysis. Since this propagation of the surface morphology into the plasma plume is driven by the plasma expansion, its final impact is strongly pressure dependent. This study examines the influence of varying ambient pressures (7–1000 mbar) on plasma morphology, spectral characteristics, and key plasma properties such as electron number density at a well-defined Cu–Sn boundary, in comparison with the results obtained using homogeneous alloys. Several approaches of plasma imaging with bandpass filters, spectroscopy, and Radon transform-based 3D reconstruction were employed to analyze elemental distribution, signal-to-noise (SNR) and signal-to-background (SBR) ratios, as well as electron number densities. The 3D reconstructions revealed a pronounced plasma asymmetry for the ablation at the material boundary, in contrast to the near-axial symmetry observed for the ablation of homogeneous alloys. At lower pressures, this distinct elemental separation in plasma persisted, while higher pressures led to an increased collisional mixing and homogenization. SNR and SBR were consistently lower for ablation at the boundary compared to homogeneous samples. These findings highlight how boundary ablation contributes to plasma inhomogeneities in LIBS analysis of heterogeneous materials and emphasize the need to account for these effects when using LIBS for elemental mapping of fine heterogeneous structures. KW - Laser-induced breakdown spectroscopy KW - Plasma inhomogeneity KW - Plasma tomography KW - Radon transform KW - Material boundaries KW - Ambient pressure effects PY - 2025 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-634777 DO - https://doi.org/10.1016/j.talanta.2025.128377 SN - 1873-3573 VL - 295 SP - 1 EP - 8 PB - Elsevier B.V. AN - OPUS4-63477 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - You, Yi T1 - Differential Mobility Analysis with Acoustic Ion Manipulation (AIM) N2 - Ion mobility analyses provide complementarity to mass spectrometry in analyte ion identification through the introduction of a higher-pressure separation modality. The recently discovered acoustic ion manipulation (AIM) phenomenon, which exploits unique behaviors of ions in acoustic fields, presents a novel, electric-field-free means to distinguish ions by mobility. In one form of AIM, a static pressure field in an ultrasonic resonator causes a displacement of the ion stream toward the node region, when initially directed toward the antinode. When the static field strength falls below the threshold for all ion deflection, the partitioning reflects ion-specific acoustic mobilities or acoustic radiation impedance. This study demonstrates ion-oriented mobility separation with the AIM approach for mass-spectrometric analysis. An Orbitrap mass spectrometer was used to record ion signal variations as a function of acoustic field strength. An acoustic pressure source with a transducer–reflector configuration was used to generate a standing acoustic wave for partial ion deflection. The drive frequency was swept near resonance to modulate the static pressure field. An alternating-current (AC) plasma discharge source was used to produce an ion beam directed toward an antinode of the resonant structure and later deflected into the mass spectrometer inlet with the acoustic field. Several small molecule analytes, including methanol, ethanol, acetone, and toluene, were doped in the discharge gas to distinguish ions formed in the source from those produced in transit to the MS inlet. An ion beam, offset relative to the inlet capillary of the mass spectrometer, yielded minimal ion detection in the absence of the resonant acoustic field. A sweep of the frequency near resonance induced a low–high–low transition in the static pressure within the resonator. Consequently, the total ion signal as a function of drive frequency resembled a horn gain curve, which is commonly recognized as a key characteristic in ultrasonic transducer design. Maximum ion signal was attained at the resonance frequency, while a pronounced minimum occurred at the anti-resonance frequency. Analysis of drive frequency response curves for distinct ion peaks revealed that source-generated ions displayed a congruent pattern to the overall ion count, thereby suggesting the formation of clusters prior to the vacuum region of the mass spectrometer. A finer frequency scan near the resonance region differentiated these clusters. For instance, response curves for toluene-related ions are slightly deviated from those associated with alcohols. Notably, a series of ions, presumably originating from an identical chemical precursor, manifested an entirely distinctive drive frequency response; their maximal signal occurred at a frequency not associated with any characteristic of the acoustic system or its electronics. The frequency response curves of the ions allowed implementation of a modified cross-correlation (mXcorr) algorithm to categorize ions according to chemical origin or clustering. The use of frequency, rather than the transducer voltage/power, offers the advantage of electronically measuring the horn gain curve in tandem with ion-specific analysis. This gain curve subsequently serves as a reference to decode latent chemical information for enhanced analytical accuracy. T2 - ASMS 2025 Conference CY - Baltimore, MA, USA DA - 01.06.2025 KW - Acoustic Ion Manipulation KW - Mass Spectrometry PY - 2025 AN - OPUS4-63512 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Palásti, Dávid jenö T1 - Interferometric sensing in the UV range – Investigation and comparison of the all-reflective spatial heterodyne spectrometer designs N2 - Spatial heterodyne spectrometers (SHS) are optical interferometric devices, working in the UV and visible spectral ranges [1]. The most common SHS setup is similar to the Michelson interferometer, both utilizes a beam splitter in the incoming beam path. In case of the SHS the split beams are not aimed towards orthogonal mirrors, but reflective optical gratings, set under a selected angle. These optical gratings diffract the beams, the direction of every wavelength will depend on the grating constant and the angle of the gratings. The wavefronts belonging to different wavelengths are going to cross each other under a unique angle, resulting in a spatial interference, which is recorded by a digital camera. This relatively compact setup provides high resolution and light throughput, which properties were harnessed for tasks requiring good line separation and/or high sensitivity [2]. However, SHS are only applicable on wavelengths for which an adequate transmissive beam splitter is available like the visible range, but not the far UV. To overcome this limitation, different all-reflective designs were introduced [3]. These instruments utilize symmetric optical gratings for the splitting and recombination of the beams. Although these SHS devices solve the main limitations of the traditional ones, they come with their fair share of drawbacks as well, such as more complex arrangement and the requirement for more delicate tuning. The behaviour of the traditional SHS is well documented [4,5], but in regards of the all-reflective ones we have much less available information. In this current study we utilized computational modelling to predict the behaviour of the all-reflective SH spectrometers, with special attention to the effects of the different alignment errors. Later we utilize this knowledge to fine tune an SHS for sensing (LIBS, Raman) in the UV region. Furthermore, we are introducing two new all-reflective SHS setups and compering them to their older counterparts. T2 - 20th European Winter Conference on Plasma Spectroscopy CY - Berlin, Germany DA - 02.03.2025 KW - SHS KW - Spectroscopy PY - 2025 AN - OPUS4-63553 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Hufgard, Josefin T1 - Traveling Wave Acoustic Ion Manipulation (AIM) for Ion Trajectory Alteration N2 - Acoustic ion manipulation (AIM) is a recent discovery reliant on the sound-ion interactions under ambient conditions. Instead of relying upon conventional electric or magnetic fields, this technique initially exploits standing acoustic waves to focus, gate, deflect, and separate ions. Compared to AIM in a standing wave scenario, the transportation of ions and their response to traveling acoustic waves remain less understood. In contrast to standing waves, which establish stationary pressure domains, traveling waves engender continuously propagating pressure variations. Here, we report on AIM effects induced by traveling acoustic waves that occur from a single-transducer setup. The changes in ion trajectory induced by acoustic traveling waves, ion-specific responses to the traveling wave and its analytical applications will be investigated. A home-built alternating-current (AC) plasma source was used to produce a laminar ion stream, positioned ~10 cm from the inlet capillary of an Orbitrap mass spectrometer. A Langevin-type ultrasonic transducer operated at 40 kHz and ~50 W was used to introduce a diverging sound gradient arranged perpendicular to the ion beam direction. Small model analytes, such as methanol, isopropanol, and acetone, were doped in the discharge gas flow as traces produced in the source, to differentiate from ions produced between the source and MS inlet capillary. Aerodynamic information on both the sound field and the gas stream is provided by defocusing shadowgraphy images. T2 - ASMS 73rd Conference on Mass spectrometry and Allied topics CY - Baltimore, Maryland, USA DA - 01.06.2025 KW - Mass spectrometry KW - Acoustic Ion Manipulation (AIM) KW - Traveling acoustic wave PY - 2025 AN - OPUS4-63380 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -