Advanced ceramics incorporate multifunctional design and innovation to produce high-performance applications in the fields of biomedicine, automotive engineering, electronics, energy and mechanical engineering. The combination of ceramics with other materials (metals, polymers or other ceramics) has enabled the fabrication of hybrid systems with exceptional structural and functional properties. Examples are bio-implants for hip joint replacements, piezo-ceramic actuators in car injection devices, resistors and capacitors in microelectronics, batteries or solid oxide fuel cells for energy storage, among others. However, a critical issue affecting the functionality, lifetime and reliability of these systems is the initiation and uncontrolled propagation of cracks in the brittle ceramic parts, yielding in some cases very high rejection rates of component production.
In contrast to metals and polymers, crack propagation in ceramics is usually catastrophic due to their high stiffness and lack of plastic deformation upon loading. As a result, ceramics have low tolerance to damage. In this regard, the remarkable “damage tolerance” found in natural materials such as wood, bone or mollusc shells, has yet to be achieved in technical ceramics. You can replace a mobile phone, but we do not want a fracture of a hip-joint or a ceramic sensor that fails in an “autonomous car”. Novel “bio-inspired” ceramic designs combining microstructure and architecture could change this situation.
The overall objective of this project aimed to establish new scientific principles for the design and fabrication of innovative ceramics with unprecedented damage tolerance and high reliability. The main strategy has been based on tailoring microstructural features (e.g. texture degree, tailored internal stresses, second phases, interface bonding) in a hierarchical architecture, in order to provide outstanding lifetime and reliability in structural and functional ceramic devices.