材料科学
堆积
光电子学
异质结
非线性光学
光子学
二次谐波产生
过渡金属
非线性系统
超晶格
吸收(声学)
纳米技术
共振(粒子物理)
费斯特共振能量转移
范德瓦尔斯力
非线性光学
量子阱
化学物理
量子点
凝聚态物理
光子晶体
光学现象
光电流
激光器
等离子体子
极化(电化学)
半导体
表面等离子共振
作者
Ziyu Luo,Qin Tan,Yangguang Zhong,Zhi Qiang Hua,Chenxi Liu,X. X. Yi,Xinfeng Liu,Shula Chen,Anlian Pan
标识
DOI:10.1002/adom.202502763
摘要
Abstract Ruddlesden–Popper perovskites (RPPs) exhibit intrinsic quantum well structures and exceptional photoelectric properties, including superior light absorption characteristics and efficient carrier transport capabilities. These properties have garnered significant interest in their applications in light‐emitting diodes, sensors, and photovoltaics. Nevertheless, most of these applications remain within the realm of linear optics, leaving the vast potential of RPPs in nonlinear optics relatively unexplored. In this study, it is demonstrated that van der Waals stacking between transition metal dichalcogenides and RPPs enables a remarkable near two‐order‐of‐magnitude enhancement in second harmonic generation (SHG). Through systematic investigation, it is revealed that this enhanced SHG arises from nonlinear resonance energy transfer (ET) facilitated by long‐range dipole–dipole coupling. Importantly, the SHG enhancement can be effectively modulated by controlling the thickness of RPP layers. Furthermore, this ET‐mediated SHG enhancement is not limited to specific combinations but is a general phenomenon observed in heterostructures involving RPPs and various 2D materials. This work provides a practical approach to achieving scalable and uniform enhancement of nonlinear optical responses in 2D materials, opening a promising avenue for the development of high‐performance, multifunctional nonlinear photonic nanodevices.
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