Nanotechnology has revolutionised many industries. Engineered nanomaterials (ENMs), the small, nanoscale materials at the heart of this technology, have novel and unique properties that drive the nanotechnology industry. However, increasing ENM abundance and availability has led to concerns regarding the risks they may pose to the environment. Significant advances have been made towards understanding ENM core chemistry, behaviour and transport, but a knowledge gap exists regarding their surface chemistry and its evolution in the environment, and how this may impact interactions with living organisms. In particular, the dynamic, environmentally-acquired surface coating called the “eco-corona” is a new concept that has seen little exploration until recently. The coating formed may be composed of entities right from small ions or molecules to large macromolecular material such as natural organic matter, and may have different attachment modes and strengths. Since ENMs have a high specific surface area and surfaces play a major role in ENM interactions and reactivity, understanding their surface chemistry is important in a comprehensive assessment of ENM fate and impact.
The overall objective of the project was to characterise the fundamental interactions occurring at the surface of ENM and its impact on environmental ENM chemistry and bio-nano interactions with a range of analytical and imaging techniques. The project focused on the exploration of Raman spectroscopy and surface-enhanced Raman spectroscopy (SERS) as a novel application to probe the surface chemistry of ENMs in the context of eco-corona formation, as well as the application of a multimodal approach to imaging the bio-nano interactions.