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What we do...

Our experimental work focuses on light-based sensing technologies which have applications in healthcare diagnostics, environmental monitoring and homeland security. We also use light-based techniques to analyse painted art-works without damaging them. In our computational work, we employ advanced computer-modelling techniques to 'design' and understand the physical behaviour of functional materials, such as new computer-memory materials.

We are funded by...

We are grateful to NIHR (i4i) and EPSRC for funding these projects.

Our research

Our research is mainly concerned with different aspects of (bio)chemical sensing (e.g. using MEMS or optical devices), and with non-crystalline materials (e.g. glasses), understanding their physical properties in terms of their atomic structure and defects. The approach is multidisciplinary, covering solid-state chemistry, physics and materials science. Areas of interest include:

  • Microcantilever sensors for ultra-sensitive detection of chemical and biological analytes.
  • Optical sensors, including evanescent-waveguide sensors, SERS using holographic substrates.
  • Computer simulation of the atomic structure and vibrational dynamics of disordered materials.
  • Ab-initio computer simulation of phase transformations and optically-induced metastabilities in glasses, e.g. used in phase-change memories (Flash replacement).
  • Experimental study of optically-induced changes in glasses, with applications in the fields of optical- waveguides and chemical sensors, data storage and all-optical actuation.

Figure: Ab initio molecular-dynamics model of the amorphous state of the phase-change non- volatile memory material Ge2Sb2Te5

Selected Publications

 

  • Computer-simulation design of new phase-change memory materials. Phys. Status Solidi A 207, 510 (2010)
  • Spatial distribution of rare-earth ions and GaS4 tetrahedra in chalcogenide glasses studied via laser spectroscopy and ab initio molecular dynamics simulation. Phys. Rev. B 81, 104204 (2010)
  • Simultaneous readout of multiple microcantilever arrays with phase-shifting interferometric microscopy (PSIM) Rev. Sci. Instr. (2009), 80, 093101-8
  • Evidence of formation of tightly bound rare-earth clusters in chalcogenide glasses and their evolution with glass compositions. Phys Rev B, (2009), 79, 180202(1-4)
  • Evanescent-Wave Excitation of Surface-Enhanced Raman Scattering Substrates by an Optical-Fiber Taper. Optics Letters (2009) 34, 2685-2687
  • Microscopic origin of the fast crystallization ability of Ge-Sb-Te phase-change memory materials, Nat. Mat., (2008), 7, 399
  • All-optical actuation of amorphous chalcogenide-coated cantilevers, J. Non-Cryst. Sol., (2007), 353, 250.
  • Universal features of terahertz absorption in disordered materials, Phys. Rev. Lett., (2006), 97, 055504
  • Universal features of localized eigenstates in disordered systems, J. Phys. Cond. Matt, (2005), 17, L321

Publications

Novel metal oxides with promising high-temperature thermoelectric performance
L Peng, N Miao, G Wang, J Zhou, SR Elliott, Z Sun
– Journal of Materials Chemistry C
(2021)
9,
12884
On the Chemical Bonding of Amorphous Sb2Te3
FC Mocanu, K Konstantinou, J Mavračić, SR Elliott
– physica status solidi (RRL) – Rapid Research Letters
(2020)
15,
2000485
Simulation of Phase-Change-Memory and Thermoelectric Materials using Machine-Learned Interatomic Potentials: Sb2Te3
K Konstantinou, J Mavračić, FC Mocanu, SR Elliott
– physica status solidi (b)
(2020)
258,
2000416
Quasilocalized Vibrations in Vitreous Silica
NS Shcheblanov, ME Povarnitsyn, JD Wiles, SR Elliott, SN Taraskin
– physica status solidi (b)
(2020)
258,
2000422
Tunable phase transitions and high photovoltaic performance of two-dimensional In2Ge2Te6 semiconductors.
N Miao, W Li, L Zhu, B Xu, J Zhou, SR Elliott, Z Sun
– Nanoscale Horiz
(2020)
5,
1566
Vacancy formation energy and its connection with bonding environment in solid: A high-throughput calculation and machine learning study
YX Cheng, L Zhu, G Wang, J Zhou, SR Elliott, Z Sun
– Computational Materials Science
(2020)
183,
109803
Revisiting the Makishima–Mackenzie model for predicting the young's modulus of oxide glasses
Y Shi, A Tandia, B Deng, SR Elliott, M Bauchy
– Acta Materialia
(2020)
195,
252
Phonon traces in glassy vibrations
NS Shcheblanov, ME Povarnitsyn, JD Wiles, SR Elliott, SN Taraskin
– Physical Review B
(2020)
102,
024202
Chemical Bonding in Chalcogenides: The Concept of Multicenter Hyperbonding
TH Lee, SR Elliott
– Advanced Materials
(2020)
32,
e2000340
Disorder by design: A data-driven approach to amorphous semiconductors without total-energy functionals.
DK Limbu, SR Elliott, R Atta-Fynn, P Biswas
– Sci Rep
(2020)
10,
7742
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Research Interest Groups

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