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CMP
Credit: Jack Hobhouse

Dr Dharmalingam Prabhakaran

Researcher

Research theme

  • Quantum materials

Sub department

  • Condensed Matter Physics

Research groups

  • Synthesis and crystal growth
dharmalingam.prabhakaran@physics.ox.ac.uk
Telephone: 01865 (2)72270,01865 (2)72351,01865 (2)72341
Clarendon Laboratory, room 175,375,374B,374A,371A,371,177,115,373 (office)
  • About
  • Publications

Magnetic and ferroelectric orderings in multiferroic α-NaFeO2

Physical Review B American Physical Society (APS) 89:18 (2014) 184421

Authors:

Noriki Terada, Dmitry D Khalyavin, Juan M Perez-Mato, Pascal Manuel, Dharmalingam Prabhakaran, Aziz Daoud-Aladine, Paolo G Radaelli, Hiroyuki S Suzuki, Hideaki Kitazawa
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Vacancy defects and monopole dynamics in oxygen-deficient pyrochlores

Nature Materials Springer Science and Business Media LLC 13:5 (2014) 488-493

Authors:

G Sala, MJ Gutmann, D Prabhakaran, D Pomaranski, C Mitchelitis, JB Kycia, DG Porter, C Castelnovo, JP Goff
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Vacancy defects and monopole dynamics in oxygen-deficient pyrochlores

Nature Materials Springer Nature 13:5 (2014) 488-493

Authors:

G Sala, MJ Gutmann, D Prabhakaran, D Pomaranski, C Mitchelitis, JB Kycia, DG Porter, C Castelnovo, JP Goff
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High-temperature electromagnons in the magnetically induced multiferroic cupric oxide driven by intersublattice exchange

Nature Communications Springer Nature 5 (2014) 3787

Authors:

SPP Jones, SM Gaw, KI Doig, D Prabhakaran, EM Hétroy Wheeler, Andrew Boothroyd, J Lloyd-Hughes

Abstract:

Magnetically induced ferroelectric multiferroics present an exciting new paradigm in the design of multifunctional materials, by intimately coupling magnetic and polar order. Magnetoelectricity creates a novel quasiparticle excitation--the electromagnon--at terahertz frequencies, with spectral signatures that unveil important spin interactions. To date, electromagnons have been discovered at low temperature (<70 K) and predominantly in rare-earth compounds such as RMnO3. Here we demonstrate using terahertz time-domain spectroscopy that intersublattice exchange in the improper multiferroic cupric oxide (CuO) creates electromagnons at substantially elevated temperatures (213-230 K). Dynamic magnetoelectric coupling can therefore be achieved in materials, such as CuO, that exhibit minimal static cross-coupling. The electromagnon strength and energy track the static polarization, highlighting the importance of the underlying cycloidal spin structure. Polarized neutron scattering and terahertz spectroscopy identify a magnon in the antiferromagnetic ground state, with a temperature dependence that suggests a significant role for biquadratic exchange.
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Restoration of the third law in spin ice thin films

Nature Communications Springer Nature 5 (2014) 3439

Authors:

L Bovo, X Moya, D Prabhakaran, YA Soh, Andrew Boothroyd, ND Mathur, G Aeppli, ST Bramwell

Abstract:

A characteristic feature of spin ice is its apparent violation of the third law of thermodynamics. This leads to a number of interesting properties including the emergence of an effective vacuum for magnetic monopoles and their currents – magnetricity. Here we add a new dimension to the experimental study of spin ice by fabricating thin epitaxial films of Dy2Ti2O7, varying between 5 and 60 monolayers on an inert substrate. The films show the distinctive characteristics of spin ice at temperatures >2 K, but at lower temperature we find evidence of a zero entropy state. This restoration of the third law in spin ice thin films is consistent with a predicted strain-induced ordering of a very unusual type, previously discussed for analogous electrical systems. Our results show how the physics of frustrated pyrochlore magnets such as spin ice may be significantly modified in thin-film samples.
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