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KARL OTTO MÜNNICH (1925–2003): IN MEMORIAM

Published online by Cambridge University Press:  09 June 2021

Bernd Kromer*
Affiliation:
Institute of Environmental Physics, University of Heidelberg, Heidelberg69120, Germany
Ingeborg Levin
Affiliation:
Institute of Environmental Physics, University of Heidelberg, Heidelberg69120, Germany
Susanne Lindauer
Affiliation:
Curt-Engelhorn Center for Archaeometry, Mannheim68159, Germany
Bernd Jähne
Affiliation:
Curt-Engelhorn Center for Archaeometry, Mannheim68159, Germany
Matthias Münnich
Affiliation:
Dept. of Environmental Systems Science, ETH Zürich, 8092Zürich, Switzerland
Ulrich Platt
Affiliation:
Institute of Environmental Physics, University of Heidelberg, Heidelberg69120, Germany
Peter Schlosser
Affiliation:
Julie Ann Wrigley Global Futures Laboratory, Arizona State University, Tempe, AZ85287-7805, USA
*
*Corresponding author. Email: [email protected]
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Abstract

Type
Obituary
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright
© The Author(s), 2021. Published by Cambridge University Press on behalf of the Arizona Board of Regents on behalf of the University of Arizona

Karl Otto Münnich

1925–2003

Karl Otto Münnich (KO) came to the field of radiocarbon by accident. Born in Heidelberg, Germany, in 1925, he had studied nuclear physics at the local university. KO planned to continue a career as a nuclear physicist when, after finishing his studies in 1952, Prof. Otto Haxel (inspired after meeting Willard Libby) offered him a position to set up a radiocarbon laboratory. Haxel had recognized KO’s experimental skills in an advanced lab course. Since this was outside KO’s main interest at the time, he was initially reluctant to do so. His friends convinced him that “he would be an idiot” not to accept such a rare, well-paid position at the time.

KO succeeded to develop a method to purify CO2 gas sufficiently well to be used as counting gas in a proportional counter, and he optimized the counter technology and electronics during his doctoral project, granted in 1957. In the same year the first Heidelberg date list was published in Science (Münnich Reference Münnich1957), including calibration measurements on wood dendrochronologically dated back to 1400 AD, an estimate of fossil CO2 contribution in modern plants, and 14C ages of 58 archaeological samples (bone, wood, peat, plants) 14C dated all the way back to Late Glacial. Archaeologists immediately turned to the new dating laboratory, but KO also recognized right from the start the significance of 14C as tracer in the environment.

Already in this early period, KO’s sense for the big picture became obvious. Together with John Vogel (Pretoria), who worked on his physics doctoral project in 1955–1959 in Heidelberg, he published the first measurements in Europe showing the 14C signal from atomic bomb tests in plant material. Together with corresponding data from the Southern Hemisphere, they were able to make a first estimate of the hemispheric residence time of air of about 1.5 years (Münnich and Vogel 1958). At the same time, they started to apply 14C dating to groundwater (Brinkmann et al. Reference Brinkmann, Münnich and Vogel1959; Münnich Reference Münnich1963). This topic evolved strongly over the next two decades (Sonntag et al. Reference Sonntag, Thorweihe, Rudolph, Löhnert, Junghans, Münnich, Klitzsch, Shazly and Swailem1980). A comprehensive summary of KO’s insight into the potential of 14C as universal tracer is given in his overview in 1963 (Münnich Reference Münnich1963).

During his career, KO targeted an impressive range of other stable and radioactive isotopes in the environment. Bomb-tritium and natural deuterium in water were already studied since 1963 (Zimmermann et al. Reference Zimmermann, Münnich, Roether, Kreutz, Schubach and Siegel1966). In 1969, KO participated in the GEOSECS test cruise, together with W. Broecker in the Pacific, off Baja, California. This event opened the way for the Heidelberg 14C laboratory to join the German section of GEOSECS in two cruises of RV Meteor in the Atlantic Ocean, with KO as chief scientist. These transects resulted in dense depth profiles of various chemical and isotopic species, among them tritium, 13C, and 14C (Roether and Münnich Reference Roether and Münnich1972, Reference Roether and Münnich1974; Ribbat et al. Reference Ribbat, Roether and Münnich1976; Roether et al. Reference Roether, Münnich and Schoch1980).

The large number of ocean 14C samples and the high demands on precision (< 3‰ error) required by the small 14C gradient in ocean deep water lead to a new design of the low-level CO2 gas counters of the Heidelberg laboratory: 9 counters of 4 L each were mounted in a system of 5 flat guard counters (Schoch et al. Reference Schoch, Bruns, Münnich and Münnich1980). The CO2 samples were purified chromatographically with charcoal resulting in highest purity, allowing high pressure in the counters. Eventually a total of 19 counters were installed in an underground counting room (Kromer and Münnich Reference Kromer, Münnich, Taylor, Long and Kra1992), used for 14C samples of ongoing ocean cruises on RV Polarstern to the Arctic Ocean and the Weddell Sea (Schlosser et al. Reference Schlosser, Kromer, Bayer and Münnich1989, Reference Schlosser, Bönisch, Kromer, Münnich and Koltermann1990) and extensive tree-ring based calibration.

Potential variations of the past atmospheric 14C level, i.e. calibration of the 14C clock, was an early-on topic of collaboration among the European 14C laboratories, especially with Groningen (Münnich et al. Reference Münnich, Östlund and De Vries1958; Willis et al. Reference Willis, Tauber and Münnich1960). In the mid-1970s, KO contacted Bernd Becker of the botanical laboratory of Hohenheim University, Germany about tree-ring chronologies. From here, a very close collaboration originated in 14C dating, as well as in fieldwork to recover subfossil trees. Initially an AD section was measured and a 200-yr solar cycle identified (Bruns et al. Reference Bruns, Münnich and Becker1980b). From then onwards initially floating tree-ring sections of the mid- and early Holocene were studied, expanded and finally linked dendrochronologically (Kromer et al. Reference Kromer, Rhein, Bruns, Schoch-Fischer, Münnich, Stuiver and Becker1986, Reference Kromer, Becker, Spurk and Trimborn1994, Reference Kromer, Becker, Trimborn, Spurk, Troelstra, Hinte and Ganssen1995; Becker Reference Becker1993; Becker and Kromer Reference Becker and Kromer1993; Kromer and Becker Reference Becker1993, Reference Kromer and Becker1995).

KO was also a pioneer in using 14C and 222Rn as tracers for soil processes (Zimmermann et al. Reference Zimmermann, Münnich, Roether, Kreutz, Schubach and Siegel1966; Zimmermann Reference Zimmermann, Münnich, Roether and Stout1967; Bruns et al. Reference Bruns, Levin, Münnich, Hubberten and Fillipakis1980a; Dörr and Münnich Reference Dörr and Münnich1980; Dörr et al. Reference Dörr, Kromer, Levin, Münnich and Volpp1983; Dörr and Münnich Reference Dörr and Münnich1986, Reference Dörr and Münnich1989). This research prepared the basis for soil studies following the Chernobyl accident (Dörr and Münnich Reference Dörr and Münnich1987).

Already in the late 1950s KO saw the key role of 14C as atmospheric tracer in two aspects: (1) bomb 14C to study atmospheric mixing and gas exchange with the ocean, and (2) the quantification of fossil fuel in anthropogenic fluxes of CO2. He started the continuous, bi-weekly collection of CO2 at an Austrian alpine site (Vermunt) in 1959 and then a set of sampling stations in the Northern and Southern hemispheres (Levin et al. Reference Levin, Kromer, Wagenbach and Münnich1987) was added, some of which are still operated to this day (Levin et al. Reference Levin, Kromer, Schoch-Fischer, Bruns, Münnich, Berdau, Vogel and Münnich1985, Reference Levin, Bösinger, Bonani, Francey, Kromer, Münnich, Suter, Trivett, Wölfli, Taylor, Long and Kra1992, Reference Levin, Naegler, Kromer, Diehl, Francey, Gomez-Pelaez, Steele, Wagenbach, Weller and Worthy2010, Reference Levin, Kromer and Hammer2013). The data of these sampling stations cover the longest atmospheric 14C series worldwide, and provide evidence to assess the fate of the Paris Agreement (Levin et al. Reference Levin, Schuchard, Kromer and Münnich1989, Reference Levin, Bösinger, Bonani, Francey, Kromer, Münnich, Suter, Trivett, Wölfli, Taylor, Long and Kra1992).

Right at the beginning of the laboratory work in Heidelberg, KO and Haxel tested all kinds of materials for their suitability for radiocarbon measurements and how they should be pretreated. For example, from the beginning bone samples in Heidelberg were pretreated using dialysis tubes of 10 kDalton separation, similar to the ultrafilter step of 30 kDalton, to eliminate short chained fragments. Environmental aspects found their way into research by e.g. sampling plants from close to the motorway between Heidelberg and Mannheim or shells from the nearby rivers Rhein and Neckar. This curiosity to explore contexts was one of his trademarks.

KO was not only a leader in isotope studies in the field, but also in developing laboratory experiments to study the basic properties of such tracers. From 1972 to 1974 KO Münnich was director of the Institute of Physical Chemistry, Jülich Nuclear Research Center, Germany, before he returned to Heidelberg University in 1975 as founding director of the Institute of Environmental Physics, a position he kept until his retirement in 1992. He designed a small circular wind tunnel of 1 m diameter to explore crucial parameters for quantification of air/water exchange (Münnich et al. Reference Münnich, Clarke, Fischer, Flothmann, Kromer, Roether, Siegenthaler, Top, Weiss, Favre and Hasselmann1978; Jähne et al. Reference Jähne, Münnich and Siegenthaler1979; Siegenthaler and Münnich Reference Siegenthaler, Münnich and Bolin1981). In the early 1980s a circular wind tunnel of 4 m diameter was built in the institute and used intensively (Jähne et al. Reference Jähne, Münnich, Bösinger, Dutzi, Huber and Libner1987). When the Institute of Environmental Physics moved to a new building in 1999, the largest instrument of this type worldwide was built with a diameter of 10 m. On a suggestion of Münnich, it was named Aeolotron. In the early 1980s, as a member of the scientific advisory board to the German Government, KO initiated the development of an electrically cooled gamma detector to identify nuclear waste in the environment in a mobile system (Kromer et al. Reference Kromer, Münnich, Weiss and Sittkus1985). This concept became suddenly essential after the Chernobyl accident, resulting in an installation of 20 mobile units in Germany.

KO also contributed ideas to AMS techniques, collaborating with the AMS laboratories of ETH Zurich, Switzerland, and Lund, Sweden (Bonani et al. Reference Bonani, Beer, Hofmann, Synal, Suter, Wölfli, Pfleiderer, Kromer, Junghans and Münnich1987; Kromer et al. Reference Kromer, Pfleiderer, Schlosser, Levin and Münnich1987; Schlosser et al. Reference Schlosser, Pfleiderer, Kromer, Levin, Münnich, Bonani, Suter and Wölfli1987).

As is evident from this short outline of his career, Karl Otto Münnich was highly creative in many fields of environmental sciences. Once he had an idea (and he had so many), he designed a project and handed it over to a student or collaborator in his institute. He followed closely the progress of any project, often writing short papers on key aspects or solution to key problems (he called them f-papers, f file). Over time, he left us with more than 1500 of such internal f-papers. In commemoration of an inspiring and at the same time endearing scientist, we named the Central Radiocarbon Laboratory of the Integrated Carbon Observation System Research Infrastructure (ICOS), which is hosted at the Institute of Environmental Physics, the “Karl Otto Münnich 14C Laboratory”.

References

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