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Optical conversion of pure spin currents in hybrid molecular devices

机译:混合分子器件中纯自旋电流的光学转换

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摘要

Carbon-based molecules offer unparalleled potential for THz and optical devices controlled by pure spin currents: a low-dissipation flow of electronic spins with no net charge displacement. However, the research so far has been focused on the electrical conversion of the spin imbalance, where molecular materials are used to mimic their crystalline counterparts. Here, we use spin currents to access the molecular dynamics and optical properties of a fullerene layer. The spin mixing conductance across Py/C60 interfaces is increased by 10% (5 × 1018 m−2) under optical irradiation. Measurements show up to a 30% higher light absorbance and a factor of 2 larger photoemission during spin pumping. We also observe a 0.15 THz slowdown and a narrowing of the vibrational peaks. The effects are attributed to changes in the non-radiative damping and energy transfer. This opens new research paths in hybrid magneto-molecular optoelectronics, and the optical detection of spin physics in these materials.
机译:碳基分子为THz和受纯自旋电流控制的光学器件提供了无与伦比的电势:电子自旋的低耗散流,没有净电荷位移。但是,到目前为止,研究一直集中在自旋不平衡的电转化上,其中分子材料用于模拟其晶体对应物。在这里,我们使用自旋电流来访问富勒烯层的分子动力学和光学性质。在光照射下,Py / C60界面上的自旋混合电导增加了10%(5×10 18 m -2 )。测量结果显示,自旋泵浦期间的光吸收率高出30%,光发射率提高2倍。我们还观察到0.15 THz的减慢和振动峰值的变窄。这些影响归因于非辐射阻尼和能量传递的变化。这开辟了混合磁分子光电子学以及这些材料中自旋物理学的光学检测的新研究途径。

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