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CMP
Credit: Jack Hobhouse

Junjie Liu

Academic Visitor

Sub department

  • Condensed Matter Physics

Research groups

  • Quantum spin dynamics
junjie.liu@physics.ox.ac.uk
Telephone: 01865 (2)72318
Clarendon Laboratory, room 252.1
  • About
  • Publications

Magnetic quantum tunneling: insights from simple molecule-based magnets

Dalton Transactions Royal Society of Chemistry (RSC) 39:20 (2010) 4693-4707

Authors:

Stephen Hill, Saiti Datta, Junjie Liu, Ross Inglis, Constantinos J Milios, Patrick L Feng, John J Henderson, Enrique del Barco, Euan K Brechin, David N Hendrickson
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Anisotropic exchange in a tetranuclear CoII complex

Polyhedron Elsevier 28:9-10 (2009) 1922-1926

Authors:

Junjie Liu, Saiti Datta, Erica Bolin, Jon Lawrence, Christopher C Beedle, En-Che Yang, Philippe Goy, David N Hendrickson, Stephen Hill
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Electric field control of spins in molecular magnets

Physical Review Letters American Physical Society

Authors:

Junjie Liu, Jakub Mrozek, William K Myers, Grigore A Timco, Richard EP Winpenny, Benjamin Kintzel, Winfried Plass, Arzhang Ardavan

Abstract:

Coherent control of individual molecular spins in nano-devices is a pivotal prerequisite for fulfilling the potential promised by molecular spintronics. By applying electric field pulses during time-resolved electron spin resonance measurements, we measure the sensitivity of the spin in several antiferromagnetic molecular nanomagnets to external electric fields. We find a linear electric field dependence of the spin states in Cr$_7$Mn, an antiferromagnetic ring with a ground-state spin of $S=1$, and in a frustrated Cu$_3$ triangle, both with coefficients of about $2~\mathrm{rad}\, \mathrm{s}^{-1} / \mathrm{V} \mathrm{m}^{-1}$. Conversely, the antiferromagnetic ring Cr$_7$Ni, isomorphic with Cr$_7$Mn but with $S=1/2$, does not exhibit a detectable effect. We propose that the spin-electric field coupling may be used for selectively controlling individual molecules embedded in nanodevices.
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