[论文解读] Petahertz Spintronics
这篇论文展示了在铁磁层中使用近单周期激光脉冲实现亚个秒量级的自旋动力学控制,引入 attosecond magnetic circular dichroism (atto-MCD) 来揭示光诱导的自旋和轨道动量转移,并推动产生佩塔赫兹时钟速率自旋电子学。
The enigmatic coupling between electronic and magnetic phenomena was one of the riddles propelling the development of modern electromagnetism. Today, the fully controlled electric field evolution of ultrashort laser pulses permits the direct and ultrafast control of electronic properties of matter and is the cornerstone of light-wave electronics. In sharp contrast, because there is no first order interaction between light and spins, the magnetic properties of matter can only be affected indirectly on the much slower tens-of-femtosecond timescale in a sequence of optical excitation followed by the rearrangement of the spin structure. Here we record an orders of magnitude faster magnetic switching with sub-femtosecond response time by initiating optical excitations with near-single-cycle laser pulses in a ferromagnetic layer stack. The unfolding dynamics are tracked in real-time by a novel attosecond time-resolved magnetic circular dichroism (atto-MCD) detection scheme revealing optically induced spin and orbital momentum transfer (OISTR) in synchrony with light field driven charge relocation. In tandem with ab-initio quantum dynamical modelling, we show how this mechanism provides simultaneous control over electronic and magnetic properties that are at the heart of spintronic functionality. This first incarnation of attomagnetism observes light field coherent control of spin-dynamics in the initial non-dissipative temporal regime and paves the way towards coherent spintronic applications with Petahertz clock rates.
研究动机与目标
- Motivate the pursuit of ultrafast light-wave control of magnetic properties beyond tens of femtoseconds.
- Demonstrate sub-femtosecond magnetic switching in a ferromagnetic stack driven by ultrashort laser fields.
- Develop and apply attosecond time-resolved magnetic circular dichroism (atto-MCD) to track spin and orbital momentum transfer in real time.
提出的方法
- Excite a ferromagnetic layer stack with near-single-cycle laser pulses to initiate optical excitation.
- Track the ensuing dynamics in real time using attosecond time-resolved magnetic circular dichroism (atto-MCD).
- Combine experimental attosecond measurements with ab-initio quantum dynamical modelling to interpret spin and orbital momentum transfer (OISTR).
- Analyze the coupling between light-field driven charge relocation and magnetic response to understand spintronic functionality.
实验结果
研究问题
- RQ1Can light-field coherent control of spin-dynamics be achieved in the initial non-dissipative temporal regime?
- RQ2How does optically induced spin and orbital momentum transfer occur in synchrony with charge relocation under ultrafast excitation?
- RQ3What are the implications of OISTR for simultaneous control of electronic and magnetic properties relevant to spintronics?
主要发现
- Sub-femtosecond magnetic switching is observed in a ferromagnetic layer stack.
- Attosecond time-resolved MCD detects optically induced spin and orbital momentum transfer (OISTR) synchronous with light-field driven charge relocation.
- Ab-initio quantum dynamical modelling supports a mechanism linking electronic and magnetic property control.
- Demonstrates a first incarnation of attomagnetism with light-field coherent control of spin dynamics in the initial non-dissipative regime.
- Paves the way for coherent spintronic applications operating at petahertz clock rates.
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