- The main result of the project is a modelling framwork that indicates how semiconductor thin film can be dried in a controlled way on a limited substrate size by using an optimized relative movement between the drying nozzle and the substrate. It is shown, in particulor, how the optimal movement trajectory changes if the coated wet film has different shapes as caused by the employed coating method. This result could be very useful to the industrial application of coating perovskite thin film on top of silicon solar cells, where a reproduciblity homogeneous and rapid drying is of utmost importance. The succussful commercialization of silcion-perovksite tandems, in turn, could have a tangible impact of reducing global CO2 emissions.
- Another result of this work is a review that points out the impact of process parameter on perovskite solution processes in general. Thus, by improving the standard of which process parameters should be reported, this work could improve the data gathered on the technology and facilitate the application of machine learning within the community to inpire new experiments or find new materials. Further, reproduciblity of perovskite solution processes wihin the communiy is facilitated if more process parameters, especially on air streams used for drying, are correctly reported.
- The last result of the work is still ongoing and will be released as a green solvent screening tool based on solublity paramters predicted by state-of-the-art foundational models that can be used to select possible solvent substitutes for hyrbird perovskite processes soon. This could help to reduce the impact of perovskite solution processes onto the environment and make the commercialisation more accessible by reducing risk and safety measures for the operators.