Active Materials & Manufacturing Clean Energy

Processing of Smart Porous Electro-Ceramic Transducers - ProSPECT

In plain English

AI plain-English summary

Porosity—tiny holes in a material—is usually seen as a flaw, but this project will deliberately engineer it into ferroelectric ceramics to create smarter sensors, energy harvesters, and water-cleaning devices. Ferroelectrics generate electricity when squeezed, bent, or heated, making them useful in pressure sensors, sonar, and vibration energy harvesters. Until now, manufacturers have tried to make these materials as dense and defect-free as possible. This research flips that assumption: by controlling the size, shape, and arrangement of pores, the team aims to dramatically boost performance—for example, making sensors more sensitive or harvesters more efficient at converting vibrations into power. If successful, the work could improve sonar systems for navigation and defence, make industrial sensors cheaper and more responsive, and enable self-powered devices that scavenge energy from their environment. The researchers also plan to explore a more radical application: using the electrical charges generated by porous ferroelectrics to split water for hydrogen fuel or to destroy pollutants and bacteria in drinking water. New freeze-casting manufacturing methods will produce these porous structures with unprecedented precision, while modelling tools will predict how pore geometry alters electric fields and material behaviour. The project is high-risk—porous ferroelectrics are not yet proven at scale—but the potential payoff spans sensing, energy, and water treatment.

View original technical description
Ferroelectrics are highly polar materials that generate electrical charge in response to a change in mechanical stress or temperature. These properties make them exceptional materials for piezoelectric pressure sensors, accelerometers, SONAR, vibration energy harvesters, and pyroelectric thermal detectors. While porosity in these materials is currently viewed as a defect, I will establish that porosity can achieve a step-change in performance to produce next generation materials for sensors, SONAR, and energy harvesting. New modelling tools will inform how the pore structure can enhance the mechanical, thermal, and dielectric properties and modify the internal electric field and domain structure to enable the design of porous ferroelectrics with properties that are specifically tailored to each application. To create ferroelectric materials with the required pore structure, new manufacturing processes based on freeze-casting will deliver porous materials, multi- functional composites, and textured crystals with unprecedented control over pore structure and properties. I will also explore new and disruptive applications that to exploit the unique properties of porous ferroelectric materials, where ferroelectric charges generated by thermal or mechanical loads will be used for hydrogen production by water splitting or remove pollutants/bacteria for water purification. My vision is to integrate the new modelling tools and manufacturing methods to pioneer the use of advanced porous ferroelectrics in addressing important high-risk and high-gain global research challenges in the areas of sensing, harvesting, hydrogen generation, water treatment, and beyond.

View the original record at the funder ↗

Researchers

Christopher Bowen (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Designing with single crystal piezoelectrics and ferroelectrics
Porous Piezoelectric Single Crystal Sensors (POPSICALS)
Chemical control of function beyond the unit cell for new electroceramic materials
Molecular Ferroelectrics
Ferroelectric gating for agile and reconfigurable 2D electronics

Original classification

Research Grant

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.