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April 2026 or as soon as possible thereafter. The project The overarching project aim is to unravel the mechanisms that govern how mixtures of grasses, legumes and forbs can deliver more resilient
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various areas of theoretical and computational chemistry such as quantum and semi-classical theory of molecules, electronic excited-state dynamics and relaxation, materials and light, statistical mechanics
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, statistical mechanics, reaction kinetics and dynamics, and theory/simulation of ultrafast time-resolved experiments. You will be a part of the Physical Chemistry section at DTU Chemistry (https
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scientific advice of the highest quality within building design and processes, building construction and safety, building energy and installation, solid mechanics, fluid mechanics, materials technology
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generation of minimally invasive systems with superior dexterity and compliance, enabling navigation through complex anatomical structures such as blood vessels, the bronchial tree, and endoscopic pathways
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systems biology role of autoantibodies are of key interest but the PhD candidate have wide options to design their study. The applicant should have research interest in 1. Understanding the mechanisms
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complex anatomical structures such as blood vessels, the bronchial tree, and endoscopic pathways. Despite their potential, challenges remain in accurate modeling, sensing, and control due to their highly
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development of implements for managing main and support crops in the field, tested on stationary gantry robots and mobile platforms. Work includes lightweight, structurally optimized mechanical design, sensor
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nanofiber membranes based on the polymer materials and structures. Evaluate the membrane performance for water treatment and food production. Collaborate with the other PhD candidate at DTU Sustain in
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Job Description Are you motivated by the potential of proteomics and AI to uncover hidden biology? Do you want to map the dark extracellular matrix proteome and degradome and reveal novel mechanisms