EPSRC logo

Details of Grant 

EPSRC Reference: EP/M020398/1
Title: Advanced Functional Materials
Principal Investigator: Alford, Professor N
Other Investigators:
Oxborrow, Dr M Klein, Professor N Stevens, Professor M
Researcher Co-Investigators:
Project Partners:
Epigem Ltd Ericsson Filtronic
Link Microtek ltd Morgan Advanced Materials plc (UK)
Department: Materials
Organisation: Imperial College London
Scheme: Platform Grants
Starts: 01 June 2015 Ends: 30 November 2020 Value (£): 1,238,786
EPSRC Research Topic Classifications:
Materials Characterisation Materials Synthesis & Growth
EPSRC Industrial Sector Classifications:
Healthcare
Related Grants:
Panel History:
Panel DatePanel NameOutcome
23 Feb 2015 Platform Grant Interviews - 23 February 2015 Announced
Summary on Grant Application Form
This proposal is a Platform Grant renewal. Our previous grant allowed us to develop the key characterisation facilities and enabled us to understand fully the materials that were the study of the grant. These materials were low loss microwave dielectrics, ferroelectric materials and thin films of these materials.

The Platform renewal will build upon some remarkable discoveries that the team, including the key PDRAs, has made over the last 4 years and centre around functional materials for devices operating from microwave to millimetre wave or from MHz to THz. First it is important to explain the Materials Science progress that forms the underpinning technologies that will enable us to use the Platform grant to build new devices. At the heart of microwave devices are resonators that require low dielectric loss or very high Q factor and the target is to aim for very high Q dielectrics. Our previous Platform grant and indeed prior support from EPSRC allowed us to discover very low loss, high Q materials. This culminated in two significant discoveries.

1 First we were able to use low loss resonators as sensors for liquid sensing

2 Second, we demonstrated that by using a very high Q resonator we could achieve maser action at room temperature

and in Earth's field - published in Nature 2012.

This platform grant will enable us to build upon these discoveries.

1) Advanced Characterisation: In the first theme the aim will be to carry out a series of qualifying experiments to determine the best possible conditions and materials for sensing over the wide range of frequencies available to us (Hz to THz)

2) Microwave and mm wave sensors: The third theme takes the science to application. We will use the resonators for analysis of ions, biomolecules, proteins and cells. The sensitivity of the resonators allows nanolitre quantities to be analyzed very rapidly for possible cancer cell detection in blood and bacteria in water.

3) "UMPF" and "HEP" Cavities: In the second theme we aim to make UMPF (Ultrahigh Magnetic Purcell Factor) and "HEP" (High Electric Purcell) cavities. These are small resonant cavities with a very high Q given the very small mode volume and success here will enable us to improve electron paramagnetic sensing dramatically and enable single cell detection.

Success in these new themes for the Platform would represent a remarkable step-change in technology.



Key Findings
This information can now be found on Gateway to Research (GtR) http://gtr.rcuk.ac.uk
Potential use in non-academic contexts
This information can now be found on Gateway to Research (GtR) http://gtr.rcuk.ac.uk
Impacts
Description This information can now be found on Gateway to Research (GtR) http://gtr.rcuk.ac.uk
Summary
Date Materialised
Sectors submitted by the Researcher
This information can now be found on Gateway to Research (GtR) http://gtr.rcuk.ac.uk
Project URL:  
Further Information:  
Organisation Website: http://www.imperial.ac.uk