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Field
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. Prolonged exposure to such conditions can lead to a significant deterioration of their mechanical performance. Material degradation arises from slow and irreversible changes in the polymer matrix, including
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microplastic persistence, these thermosets offer a renewable, more sustainable alternative to conventional materials. To ensure these materials are safe, their degradation products and leachates will be
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and minimize microplastic persistence, these thermosets offer a renewable, more sustainable alternative to conventional materials. To ensure these materials are safe, their degradation products and
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circular plastics economy. Working at the interface of engineering biology, enzyme engineering and sustainability, you will focus on discovering, characterising and improving PET-degrading enzymes. You will
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fluxes up to 300 kg/m²·s), gas velocities up to 1000 m/s, and heat transfer coefficients up to 35,000 W/m²·K. Under such conditions, conventional ceramic materials undergo rapid degradation through
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the detection of accelerants, contaminants, and degraded forensic evidence and integrate advanced data processing and visualisation techniques to handle and interpret large hyperspectral data sets. Clearly
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polymer degradation, modification, and photocuring, contributing to more sustainable chemical manufacturing and advanced materials development. Working in close collaboration with academic and industrial
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research has focused on optimizing materials chemistry to improve performance. Despite these advances, the fundamental processes governing electrochemical interfaces, particularly their degradation and
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such conditions, conventional ceramic materials undergo rapid degradation through oxidation, particulate erosion, thermal shock, and phase instability, significantly limiting their performance and service life
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) Investigate the generalization of the proposed methods across optimization problem classes, and characterize the conditions under which human-in-the-loop interaction improves or degrades solution quality