Compulsory modules
Clean Energy, Materials and Sustainability (15 credits)
The aims of this module are:
- To enable students to gain an in-depth knowledge of the science and engineering principles of clean chemical energy conversions, primarily the electro-chemical energy storage and conversion, including batteries, capacitor, hydrogen and fuel cell technologies, bioenergy utilisation and carbon dioxide utilisation.
- To enable students to understand the application of battery, fuel cell and hybrid systems as an enabling clean energy technology for a wide range of applications including transportation, stationary and portable power applications.
- To enable students to gain insight into the sustainability of processes, particularly life-cycle assessment and safety.
Group Design Project (15 credits)
The aims of this module is to:
- Design an engineering component using fundamental design principles, including an appreciation of design requirements, constraints and approaches;
- Apply the principles of materials selection, and the different approaches adopted in commercial material selection systems;
- Integrate their knowledge of materials properties, manufacturing techniques and engineering principles in the solution of practical engineering materials design problems.
Advanced Processing of Materials (15 credits)
The aims of the module are to:
- Provide a broad knowledge of the principles of the processing of a range of materials;
- Provide in-depth knowledge and skills in specific advanced processing methods.
- Provide students awareness of environmental and societal impact of advanced processing methods.
MSc Project (60 credits)
The aim of the project is to develop the skills required to perform research tasks involving the application of scientific and engineering principles in areas related to the composition, manufacture and performance of materials and related products.
Optional modules (select one)
Colloid Science and Engineering (15 credits)
The aims of this module are:
- To develop a good understanding of the application of Colloid Science in a range of Chemical Engineering processes.
- To introduce and/or reinforce the student's knowledge of molecular interactions manifestation in the colloidal domain and how colloidal phenomena are manifested in the macroscopic world.
Advances in Biomaterials (15 credits)
This module aims to:
- Appraise types and properties of materials that can be (i) used for biomedical applications, (ii) derived from renewable sources, (iii) degraded in biological environments;
- Analyse how material composition and micro/nanostructure influence biological environments and degradation processes;
- Assess the design and development of materials of biological relevance and/or from renewable sources.
- Understand different techniques for biomaterials characterisations