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-Einstein condensation and polariton lasing in plasmonic nanoparticle systems. For recent research outputs of Päivi Törmä’s at Google Scholar . For recent work on the embedded-nanoparticle OLEDs, see a pre
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recruited within the framework of the national collaborative project PACTE (PEPR LUMA). The PACTE project aims to develop a new orthogonal catalysis strategy. The objective is to exploit plasmonics to enhance
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. Empa is a research institution of the ETH Domain. You will join an interdisciplinary SNSF Sinergia research project involving three Swiss partner institutions. The project aims to explore plasmonic
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heterologous expression. The expressed antibodies will then be assessed for affinity to snake venom toxins by surface plasmon resonance and ELISA, in order to compare their effectiveness with
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. Empa is a research institution of the ETH Domain. You will join an interdisciplinary SNSF Sinergia research project involving three Swiss partner institutions. The project aims to explore plasmonic
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and plasmonic nanoparticles. You will contribute to both technical development and fundamental research. This may include improving parallelized optical detection, integrating optical tweezers with
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-field resonators, such as split-ring resonator and spoof surface plasmon polariton (SSPP) resonators. Electromagnetic simulation for terahertz resonator design, such as COMSOL and HFSS. Experience with
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to characterise binary and ternary complex formation, including TR-FRET, AlphaLISA, SPR (Surface Plasmon Resonance), ITC (Isothermal Titration Calorimetry), and NanoBRET. Pursuing co-crystal structures of BromoTag
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plasmon-enhanced spectroscopy. The successful candidate will develop and apply advanced optical techniques including dark-field spectroscopy, Raman spectroscopy, ultrafast and nonlinear optical measurements
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mammalian cells, measurement of biomolecular interactions using Biolayer Interferometry or surface plasmon resonance, structural determination using single-particle cryo-EM analysis, and atomic model building