论文标题

用于全光开关和读取自旋记忆的集成混合等离子体形成器械的设计

Design of an integrated hybrid plasmonic-photonic device for all-optical switching and reading of spintronic memory

论文作者

Pezeshki, Hamed, Li, Pingzhi, Lavrijsen, Reinoud, Heck, Martijn, Bente, Erwin, van der Tol, Jos, Koopmans, Bert

论文摘要

我们引入了一种新型的集成杂化等离子体形成器械,用于纳米级铁磁铁位的全光开关和读数。由垂直磁各向异性制成的合成铁磁性物质制成的赛道记忆与硅平台上的磷化物膜上的光子波导耦合。由双V形金等离子体纳米anna与光子晶体空腔结合的设备可以通过增强吸收的能量密度和极性磁光量KERR效应(PMOKE(PMOKE)局部超出衍射极限,可以在纳米级磁性位中的磁化状态进行切换和读数。使用三维有限差分时间域方法,我们从数值上表明,在赛车场的存在相对磁化的背景区域,靶向位置磁位的磁化状态可以切换并读取磁化态,范围为30至120 nm,显然超过了裸露的光波导。我们的混合装置应对波导,弱PMOKE和旋转光子学和集成光子学之间的大小不匹配的非线性吸收的挑战。因此,它提供了综合光子学和纳米级旋转三位型之间缺失的联系,从而加快了超快和节能的先进芯片应用程序的发展。

We introduce a novel integrated hybrid plasmonic-photonic device for all-optical switching and reading of nanoscale ferrimagnet bits. The racetrack memory made of synthetic ferrimagnetic material with a perpendicular magnetic anisotropy is coupled on to a photonic waveguide onto the indium phosphide membrane on silicon platform. The device which is composed of a double V-shaped gold plasmonic nanoantenna coupled with a photonic crystal cavity can enable switching and reading of the magnetization state in nanoscale magnetic bits by enhancing the absorbed energy density and polar magneto-optical Kerr effect (PMOKE) locally beyond the diffraction limit. Using a three-dimensional finite-difference time-domain method, we numerically show that our device can switch and read the magnetization state in targeted bits down to ~100 nm in the presence of oppositely magnetized background regions in the racetrack with widths of 30 to 120 nm, clearly outperforming a bare photonic waveguide. Our hybrid device tackles the challenges of nonlinear absorption in the waveguide, weak PMOKE, and size mismatch between spintronics and integrated photonics. Thus, it provides missing link between the integrated photonics and nanoscale spintronics, expediting the development of ultrafast and energy efficient advanced on-chip applications.

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