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Prof. Dr Sinikka Lennartz

ICBM (University of Oldenburg)

  • Atlantic, hydrothermal vents, MARUM-QUEST, marine engineering / technology, Mid-Atlantic Ridge, ocean floor, sampling, black smoker, diving robots / ROV, deep sea

    A hydrothermal vent on the Mid-Atlantic Ridge. Hot, mineral-rich fluids are distributed throughout the ocean via the dispersion cloud, known as the plume. The photo was taken during the M190 research expedition with the MARUM-QUEST4000 remotely operated vehicle. The arm of the robot holds a temperature lance into the plume to measure the temperature there. MARUM - Centre for Marine Environmental Sciences, University of Bremen.

Iron’s Irony

A new review highlights how hydrothermal vents on the seafloor shape iron availability and influence the global oceanic element cycles. Researchers from Bremen and Oldenburg are involved. 

A new review highlights how hydrothermal vents on the seafloor shape iron availability and influence the global oceanic element cycles. The review study, titled “Iron’s Irony,” has been published in Communications Earth & Environment. It is led by the MARUM – Center for Marine Environmental Sciences at the University of Bremen – in collaboration with the Institute for Chemistry and Biology of the Marine Environment (ICBM) at the University of Oldenburg. 

The study synthesizes existing research and reinterprets it to explain how iron released from hydrothermal systems can be transported across entire ocean basins. “Although much of the iron emitted with the hot fluids reacts immediately with oxygen and sulfur compounds and precipitates as minerals, a small fraction remains dissolved for surprisingly long periods – bound to tiny organic molecules or influenced by microbes – and can thus be transported far beyond the vent sites,” explains Dr. Solveig I. Bühring, lead author of the study and geomicrobiologist at MARUM. 

Beyond compiling the current state of knowledge, the authors contribute new analyses from the MARHYS hydrothermal vent database and model the solubility of iron minerals to illustrate how environmental parameters and plume chemistry affect iron transport. These findings emphasize how hydrothermal plumes act as long-distance supply systems for bioavailable iron – a process with far-reaching consequences for ocean productivity and the global carbon cycle. 

The publication is the result of a collaboration among twelve scientists from major German marine research institutions. The study was led by Solveig I. Bühring from MARUM – Center for Marine Environmental Sciences at the University of Bremen – together with her MARUM colleagues Alexander Diehl and Charlotte Kleint, as well as Andrea Koschinsky from Constructor University Bremen, who is also affiliated with the Cluster of Excellence “The Ocean Floor – Earth’s Uncharted Interface” based at MARUM. Prof. Dr. Sinikka Lennartz from the Institute for Chemistry and Biology of the Marine Environment (ICBM) at the University of Oldenburg is also involved, as are GEOMAR and AWI.  

“Our results show how closely physical, chemical, and biological processes at the seafloor are intertwined – exactly what lies at the heart of the Cluster of Excellence. Studies like this help us understand how the ocean floor functions as an active link within the Earth system,” explains Dr. Charlotte Kleint. 

By combining geochemical, microbiological, and modeling perspectives, the team provides an integrated view of how hydrothermal systems are connected to global nutrient cycles – and how substances are dispersed along the invisible pathways of hydrothermal plumes, stimulating ocean productivity even in distant regions.

Source: MARUM – Center for Marine Environmental Sciences

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