Light from ripples

Light from ripples
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DOI:
10.1038/nphys2447
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发表时间:
2012-10
期刊:
影响因子:
19.6
通讯作者:
I. Georgescu
I. Georgescu
中科院分区:
物理与天体物理1区
文献类型:
--
作者:
I. Georgescu

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condensate; formed by two-dimensional exciton polaritons in a semiconductor microcavity (Fig. 1a). Exciton polaritons are quasiparticles with the mixed characteristics of a photon and an electronic excitation (an exciton). They have integer spin and a very small effective mass, which leads to effective condensation at a relatively high temperature7. The polariton lifetime is only about 10 ps, but it has been argued that this is long enough for a quasi-thermalized steady state to form. The momentum, energy and spin state of the polaritons can be imaged in direct space via the distribution and polarization of the photons they emit on decay. The wavefunction of the polariton condensate can be described by an effective field of spins interacting with a controllable effective magnetic field. Hivet et al. have arranged their experiment to create a onedimensional effective spin field transverse to the direction of polariton flow. Structural defects in the path of the flow create stable ‘half-soliton’textures, which correspond to monopoles in the effective spin field. The drift and acceleration of these monopoles in response to the effective magnetic field have been observed in real time. The ‘polariton monopoles’ obey the one-dimensional Coulomb law (hence they are confined), but as their effective mass is negative, like charges attract and unlike ones repel. This dimensionality and force law means they are not very much like electric charges or spin-ice monopoles. Perhaps they more closely resemble transverse domain walls in ferromagnetic nanowires, where the magnetization field is monopolar far from the wall. Such magnetic textures have been considered as elements for future logic devices8, hinting at a far-off application for polariton monopoles. In this regard polariton monopoles have at least one huge advantage over their rivals: owing to their photonic component they are extremely fast, with velocities approaching the speed of light. The magnetricity in spin ice9 and even the motion of domain walls10 is painfully slow in comparison (Fig. 1b).Hivet et al.’s result mirrors recent work on artificial spin-ice arrays11 that shows how nanotechnology can be a powerful tool with which to construct topological defects12 in effective spin systems. However the monopole epithet may be over-used. Dirac monopoles are mathematically beautiful objects, and the monopoles in real spin ice are almost pristine analogues of electric charges, whereas in the case of polaritons, as in artificial spin ice, the analogy is looser.