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Max Planck Institute of Animal Behavior, Radolfzell / Constance | Radolfzell am Bodensee, Baden W rttemberg | Germany | 7 days ago
, and no later than March 1, 2027. This position is fully funded for a period of 3.5 years. The workplace will be in Constance, Germany. PhD student (m/f/d) 100 % “Cultural Grooming and Social Bonds in
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interaction, and to determine the extent to which this synchrony is associated with the quality of the social bond between partners. To address these questions, we will study young and older adults performing
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/status for more information. Research in the McGonigal group focuses on investigating dynamic covalent and noncovalent bonding interactions of strained molecules (including polycyclic aromatic
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development introduces electrosynthesis (i.e. the creation of chemical bonds using electricity) as a key technology. The reach of this technology depends on the development of efficient catalysts adapted
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the fundamentals of bonding glass or metals to silicon nitride coated silicon wafers as well as accessing the feasibility of using these bonding methods for MEMS-based microfluidic sensor packaging
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Sacha Beniamine , Dr Oliver Bond and Dr Matteo Pellegrini Entry requirements Open to any UK or international candidates. Starting in April 2027. Later start dates may be possible, please contact Dr Sacha
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for industrial high temperature heat pumps heat exchangers that will consider modern manufacturing methods. This will include the development of multilayer coatings including bonding methods that are able
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Max-Planck-Institut für Kohlenforschung, Mülheim an der Ruhr | M lheim an der Ruhr, Nordrhein Westfalen | Germany | 14 days ago
well-defined chromium precatalysts for applications in olefin upgrading and the activation of strong bonds. The Cramer group invites applications for a PhD Student (m/f/d)in Organometallic Catalysis
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development introduces electrosynthesis (i.e. the creation of chemical bonds using electricity) as a key technology. The reach of this technology depends on the development of efficient catalysts adapted
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focus on microfluidic channels with a channel wall of low-stress silicon-rich silicon nitride. The proposed research aims to study the fundamentals of bonding glass or metals to silicon nitride coated