订单(交换)
物理
非线性系统
范德瓦尔斯力
Boosting(机器学习)
量子力学
计算机科学
人工智能
经济
分子
财务
作者
Qihang Zhang,Kai Liu,Shao-jie Fu,Xiaoting Hong,Chao Zhang,Yanqing Lu,Yong‐yuan Zhu,Yanfeng Chen,Xuejin Zhang
标识
DOI:10.1002/lpor.202401850
摘要
Abstract With their high nonlinear optical susceptibilities, a variety of 2D materials have the potential for integrated nonlinear photonic devices. For the nonlinear optical conversion efficiency, their atomic‐level thickness inevitably results in low absolute magnitude, which can be resolved by combining them with plasmonic metasurfaces. However, the field enhancement of plasmonic metasurfaces is hindered from further improvement by the overwhelming electric dipole enhancement mechanism. Here, high‐order multipoles are constructed to break the limits. The high‐order multipole enhancement mechanism is realized with anapole states, in which the dominant electric quadrupole or electric octupole brings smaller mode volume and higher field enhancement. Theoretically, the averaged enhancement factor is unprecedentedly large, ≈3 × 10 6 while a record‐high second‐harmonic generation enhancement of ≈8 × 10 5 fold is experimentally demonstrated for a WS 2 monolayer laid on the structures. The maximum conversion efficiency of ≈0.3%, occurs when stacking four layers of WS 2 monolayer onto the structures. Such a near‐field enhancement route can take effect up to the thickness of ≈5 × 10 4 layers of WS 2 monolayer, in which it turns into a pure bulk case. The work provides a clear pathway towards remarkable electromagnetic field enhancements, unparalleled light‐matter interactions, and high‐performance ultra‐compact devices.
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