太赫兹辐射
材料科学
飞秒
光电子学
自旋(空气动力学)
自旋霍尔效应
能量转换效率
横截面
电荷(物理)
激光器
工作(物理)
反向
纳米技术
电流(流体)
量子
弹道传导
量子效率
光子学
自由度(物理和化学)
量子点
轨道重叠
光伏系统
光学(聚焦)
凝聚态物理
作者
Yuqing Zou,Yiwen Song,Ziyang Li,Jiali Zhang,Hongtao Dai,Xuemei Ma,Qingyuan Jin,Zongzhi Zhang
标识
DOI:10.1002/adfm.202515949
摘要
Abstract Terahertz (THz) emitters based on spin‐to‐charge conversion have become a key focus in spintronics. While the orbital degree of freedom enables longer‐range ballistic transport in some specific material systems and offers new opportunities for high‐density information devices, synergistic THz enhancement mechanisms integrating multiple quantum states and advanced interfacial engineering remain largely unexplored. Here, a “spin–orbit dual–engine” mechanism is proposed that breaks the traditional single‐degree‐of‐freedom paradigm. Through precise design of CoPt/Pt/W heterointerfaces, spatiotemporally synchronized conversion between spin and orbital currents is achieved. Upon femtosecond laser excitation, the CoPt alloy simultaneously generates both spin and orbital polarizations. The spin current is converted into a transverse charge current via the inverse spin Hall effect in Pt, while the orbital current propagates ballistically through W and induces charge accumulation via the interfacial inverse orbital Rashba–Edelstein effect. Compared with the CoPt/Pt bilayer, which shows ≈140% higher THz emission than the conventional Co/Pt structure, the CoPt/Pt/W trilayer delivers an additional ≈138% enhancement over CoPt/Pt, demonstrating clear superiority for high‐efficiency THz sources. This work establishes a universal framework for multi‐quantum‐state synergy, advancing the design of coupled spin–orbit systems to overcome efficiency bottlenecks in THz sources.
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