TY - CONF A1 - Vogl, Jochen T1 - Realization of SI traceability for Mg isotope amount ratios & delta values N2 - In isotope ratio applications metrological principles such as measurement uncertainty and SI traceability often are not considered or realized. This is also well-documented by the traceability exception related to delta scale isotope ratio measurements CCQM requested from the CIPM. Generally, delta scale isotope ratio measurements can be performed on a precision level that is significantly lower than the uncertainty level of isotope amount ratio measurements. In the case of magnesium, we demonstrated for the first time that isotope amount ratios can be measured with uncertainties close to the typical precision of magnesium delta values, δ26/24Mg, which are at the 0.1 ‰ level. In the past, δ26/24Mg measurements were referenced to NIST SRM 980, the initial zero of the δ26/24Mg scale. With the development of MC-ICPMS, the detection of small but measurable isotopic differences in different chips of NIST SRM 980 became apparent and NIST SRM 980 was replaced by an intermediate artefact, DSM3. To solve this problem a suite of magnesium isotope reference materials, ERM-AE143, -AE144, and -AE145, has been certified in a first study by applying an ab initio calibration for absolute Mg isotope ratios without any a priori assumptions, a procedure which fulfils all requirements of a primary method of measurement. Thus, these materials qualified to establish SI-traceability for magnesium delta measurements. In a second study five expert laboratories participated to cross-calibrate all available magnesium isotope standards, which are NIST SRM 980, IRMM-009, ERM-AE143, ERM-AE144, ERM-AE145 and the standards DSM3 and Cambridge-1. The mean δ26/24Mg values for the individual iRMs, calculated from the laboratory means show 2 SD reproducibilities varying between 0.025 and 0.093 ‰. Propagated measurement uncertainties suggest a standard uncertainty of about 0.1 ‰ for δ26/24Mg determinations. Thus, SI traceability for magnesium isotope amount ratios and delta values is demonstrated to be established. T2 - CCQM Workshop on "Advances in Metrology in Chemistry and Biology" CY - Sèvres, France DA - 09.04.2019 KW - Delta values KW - SI traceability KW - Isotope amount ratio KW - Magnesium PY - 2019 N1 - Geburtsname von Mieller, Björn: Brandt, B. - Birth name of Mieller, Björn: Brandt, B. AN - OPUS4-47930 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CHAP A1 - Vogl, Jochen A1 - Pritzkow, Wolfgang ED - Vanhaecke, F. ED - Degryse, P. T1 - Reference materials in isotopic analysis N2 - The production of isotopic reference materials (IRMs), which started in the 1960s, has stagnated during the last 15 years. On the other hand, the need for IRMs increased strongly with upcoming ICP-MS techniques, especially with MC instruments, in the beginning of the millennium. In parallel, the precision of the isotope amount ratio determinations reached a level which is beyond that of IRMs certified relying on synthetic isotope mixtures. Additionally, the number of elements for which IRMs are required has increased. This difference between the users’ needs and the limitations of current IRMs can only be solved by providing IRMs defining a δ-scale for each element of interest. Such δ-RMs should be produced as solutions to avoid any complications with homogeneity issues. Whenever possible, isotope amount fractions should be provided additionally, even if the uncertainties are not sufficient for cutting-edge research on isotopic variations. Research should also focus on ways to provide isotope amount fractions with lower uncertainties. For the coming years, around 27 elements have been selected by user communities as "of interest” in this context. These elements are of interest to geo- and cosmochemists, and also to scientists working in the fields of human nutrition, human medicine, veterinary medicine, and food traceability. For 18 elements, such as Pb and U, IRMs or δ-RMs are available, provided as a solution or a solid material with sufficient homogeneity. Nevertheless, in some cases further materials are necessary, because the number of units is too small or the materials are too expensive to be widely accepted by users. At BAM, IRMs and δ-RMs will be produced according to the requirements mentioned above. NIST has also started a program to produce new RMs for δ-values. As discussed at the latest meeting of the IUPAC Commission on Isotopic Abundances and Atomic Weights (CIAAW) in July 2009 in Vienna, these activities will be supported by IUPAC. KW - ICPMS KW - IRM KW - Reference materials KW - Delta reference materials PY - 2012 SN - 978-3-527-32896-3 SN - 978-3-527-65048-4 DO - https://doi.org/10.1002/9783527650484.ch6 SP - 139 EP - 163 PB - Wiley-VCH CY - Weinheim AN - OPUS4-26102 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Vogl, Jochen T1 - Road-map for purity determination N2 - From several CCQM studies (CCQM-P107, CCQM-K72 and CCQM-P149) conclusions can be drawn for the purity assessment of a pure (metallic) element. These conclusions will be put together in this document in order to assist all NMIs/DIs in performing a purity assessment, whenever needed. T2 - CCQM IAWG Meeting CY - Paris, France DA - 18.04.2016 KW - Purity KW - Metrology KW - Traceability PY - 2016 AN - OPUS4-36063 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Vogl, Jochen T1 - Roadmap for purity determination N2 - A Roadmap for the purity Determination of pure metallic elements is presented. The roadmap distinguishes between different approaches for the purity determination and list theindividual steps for each Approach which are necessary to successfully apply These approaches. T2 - CCQM IAWG Meeting CY - Daejeon, South Korea DA - 04.10.2016 KW - Traceability KW - Purity determination PY - 2016 AN - OPUS4-38590 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Vogl, Jochen T1 - Roadmap for the purity determination of pure metallic elements N2 - High purity materials can serve as a realisation of the Système International d’Unitès (SI) unit amount of substance for the specific element. Solutions prepared from such high purity materials using gravimetric preparation and the concept of molar mass are used as calibration solutions in many fields of analytical chemistry. Calibration solutions prepared this way provide the traceability to the SI and are the metrological basis in elemental analysis. The preparation and characterization of such primary pure substances, representing the realisation of the SI unit amount of substance, is undertaken only by a small number of National Metrology Institutes (NMI) and Designated Institutes (DI). Many other NMIs and DIs, however, prepare elemental calibration solutions as calibrants for their measurement services, such as the certification of matrix Reference Materials or the provision of reference values for Proficiency Testing schemes. The elemental calibration solutions used for this purpose are not a direct service to customers, such as preparing secondary calibration solutions, but provide the source of traceability for the other services. Hence, it is necessary for the NMI or DI to obtain data on the purity of the pure metals or other materials used to prepare the solutions with measurement uncertainties meeting the needs of the above described services. This is commonly undertaken as a “fit for purpose” assessment, appropriate for the uncertainty requirement of the service provided to customers. As a consequence, total purity measurements are a long-term strategy of CCQM-IAWG. Several studies were conducted (CCQM-P107, CCQM-K72 and CCQM-P149) on the measurement of the purity of zinc. From these studies, several conclusions can be drawn for the purity assessment of a pure (metallic) element. These conclusions will be put together in this document in order to assist all NMIs/DIs in performing a purity assessment, whenever needed. T2 - CCQM IAWG Meeting CY - Paris, France DA - 24.04.2017 KW - CCQM KW - Metrology KW - Purity assessment PY - 2017 AN - OPUS4-40034 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Vogl, Jochen T1 - Roadmap for the purity determination of pure metallic elements – Basic rinciples and helpful advice N2 - High purity materials can serve as a realisation of the Système International d’Unitès (SI) unit amount of substance for the specific element. Solutions prepared from such high purity materials using gravimetric preparation and the concept of molar mass are used as calibration solutions in many fields of analytical chemistry. Calibration solutions prepared this way provide the traceability to the SI and are the metrological basis in elemental analysis. The preparation and characterization of such primary pure substances, representing the realisation of the SI unit amount of substance, is undertaken only by a small number of National Metrology Institutes (NMI) and Designated Institutes (DI). Many other NMIs and DIs, however, prepare elemental calibration solutions as calibrants for their measurement services, such as the certification of matrix Reference Materials or the provision of reference values for Proficiency Testing schemes. The elemental calibration solutions used for this purpose are not a direct service to customers, such as preparing secondary calibration solutions, but provide the source of traceability for the other services. Hence, it is necessary for the NMI or DI to obtain data on the purity of the pure metals or other materials used to prepare the solutions with measurement uncertainties meeting the needs of the above described services. This is commonly undertaken as a “fit for purpose” assessment, appropriate for the uncertainty requirement of the service provided to customers. As a consequence, total purity measurements are a long-term strategy of CCQM-IAWG. Several studies were conducted (CCQM-P107, CCQM-K72 and CCQM-P149) on the measurement of the purity of zinc. From these studies, several conclusions can be drawn for the purity assessment of a pure (metallic) element. These conclusions will be put together in this document in order to assist all NMIs/DIs in performing a purity assessment, whenever needed. KW - Purity assessment KW - Metal assay approach KW - Impurity assessment approach KW - Traceability PY - 2018 UR - https://www.bipm.org/wg/CCQM/IAWG/Allowed/April_2017/CCQM-IAWG17-28.pdf.pdf SP - 1 EP - 9 CY - Sevre AN - OPUS4-46834 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Vogl, Jochen T1 - Sr isotope ratio analysis N2 - The measurment of Sr isotope ratios is described and examples from food authenticity, provenancing of cement and pietas are provided. T2 - Workshop & Training "Isotope Ratio Analysis" CY - Pathum Thani, Thailand DA - 06.12.2023 KW - Conventional isotope ratios KW - Gypsum KW - Cement KW - Cheese PY - 2023 AN - OPUS4-59168 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Völling, E. A1 - Reifarth, N. A1 - Vogl, Jochen ED - Nosch, M.-L. ED - Laffineur, R. T1 - The intercultural context of treasure A in Troy - Jewellery and textiles N2 - At the end of May 1873, Heinrich Schliemann recovered Treasure A in Troy. He brought all the metal artifacts illegally to Athens and published his iscoveries one year later. Then he bequeathed the Trojan finds to Berlin where from 1881 onwards, Treasure A was exhibited in the Museum of Arts and Crafts (later Gropius Bau). Hubert. Schmidt inventoried and catalogued the Trojan remains in 1902 without the so-called “Dubletten” (duplicates). The transfer of the Treasure trove in 1945 to former Leningrad (St. Petersburg) and Moscow is well known, but there was a partial restoration of the looted art from the former Soviet Union back to the former GDR: eight out of eleven silver vessels of Treasure A came via Leipzig in 1979 finally back to Berlin’s Museum für Vor- und Frühgeschichte, Stiftung Preussischer Kulturbesitz in 1994. During its safe keeping in Leningrad and Leipzig, these silver jars remained ignored in the boxes in which they were transported, a Situation, which today permits them to be investigated almost in their condition of discovery. The study of the Originals allowed Information to be gleaned about their manufacture and offered opportunities for various analyses. After the gold jewellery came to light, technical data and an archaeological appraisal of the Trojan gold kept in the Pushkin Museum of Fine Arts in Moscow could be published in 1996. The considerable quantity of the outstanding gold artifacts of Treasure A was deposited inside the great silver vessel Sch 5873 and listed by Heinrich Schliemann. T2 - 13th International Aegean Conference CY - Copenhagen, Denmark DA - 21.04.2010 PY - 2012 SN - 978-90-429-2665-3 SP - 531 EP - 538 PB - Peeters Publishers CY - Liège, Belgium AN - OPUS4-26408 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Vogl, Jochen T1 - The triple isotope calibration approach BT - A new calibration approach for obtaining absolute isotope ratios of multi-isotopic elements N2 - The calibration of isotope ratio measurements is an ongoing challenge since instrumental isotope fractionation (IIF) has been detected in mass spectrometry (MS). There is a variety of approaches which either bypass IIF such as delta measurements or refer to reference materials (RMs) and thus shifting the problem of calibration to somebody else: the RM producer. For certifying isotope RMs with absolute isotope ratios only a few approaches are available, namely the isotope mixture approach, the double spike approach, the mass bias regression model and total evaporation in TIMS. All of them require either enriched isotopes, isotope RMs of another element or an RM for correcting residual error. As the enriched isotopes required for the isotope mixture and the double spike approach need to be fully characterized beforehand, all mentioned calibration approaches require a standard. Here, a new and standard-free calibration approach for obtaining absolute isotope ratios of multi-isotopic elements has been developed. The underlying principle is that each MS suffers from IIF and thus yields a specific isotope fractionation line in a three-isotope diagram. When applying a second MS featuring a different ionization mechanism, we obtain a second isotope fractionation line with a different slope in the same three-isotope diagram. In both cases the absolute isotope ratios range somewhere on the isotope fractionation line. Consequentially, the intersect of both lines yield the absolute isotope ratios of the measured sample. This theory has been tested by measuring Cd and Pb isotope ratios of suitable isotope RMs with a TIMS and an ICP-MS, both equipped with multi-collector array. During the measurements the ionization conditions were changed such that different extent of the isotope fractionation has been achieved. With the resulting data set the theory described above could be verified. The obtained absolute isotope ratios were metrologically compatible with the certified isotope ratios. The remaining average bias of -5 ‰ can be reduced with further improvements. The calibration approach is universal and can be applied to any multi-isotopic element and it is not limited by the type of the mass spectrometer. T2 - Virtual Goldschmidt 2021 CY - Online meeting DA - 04.07.2021 KW - Absolute isotope ratio KW - Traceability KW - Metrology KW - Calibration KW - Uncertainty KW - Triple isotope fractionation PY - 2021 AN - OPUS4-53023 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Vogl, Jochen T1 - Using information from CC Tables for supporting CMC claims N2 - Core capability tables list the skills and experiences, which at least partially are needed to successfully carry out a specific analytical task within the IAWG. The required skills and experiences, so-called core capabilities (CC), are identified for each analytical procedure. The summarized CC tables are listed in the appendix of each report on the corresponding key comparison or pilot study. These CC tables enable us to demonstrate that we have the analytical procedure we claim under control by means of other Key Comparison, which do not exactly meet the claimed calibration and measurement capability. This is especially important for: a) fields where no Key Comparison is available, b) Revision of CMC claims or c) when a participation in a Key Comparison was not possible. T2 - CCQM IAWG Meeting CY - Paris, France DA - 18.04.2016 KW - metrology KW - traceability PY - 2016 AN - OPUS4-36066 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -