材料科学
超短脉冲
双金属片
纳米材料
光子学
合金
光电子学
纳米颗粒
双金属
纳米技术
激光器
光开关
纳米光子学
宽带
非线性光学
光通信
光纤
纳米线
作者
Jiale Chao,Boyang Deng,Chuanxue Huang,Wenhao Lyu,Zhihong Sun,Jingjing Guo,Yuzheng Guo,Bo Fu,Haichang Lu,Wei Zhou
标识
DOI:10.1002/adom.202502331
摘要
Abstract Metallic nanomaterials serve as compact integrated modulators in ultrafast multiwavelength photonics. Engineered bimetallic alloy nanoparticles exhibit enhanced and tunable optical properties that surpass those of single‐component systems by alloying. Here, bimetallic PtNi octahedral alloy nanoparticles are demonstrated as a promising material platform for ultrafast multiwavelength lasers, exhibiting exceptional nonlinear optical responses across the entire near‐infrared spectrum. Q‐switched laser operations were successfully achieved at 1028.5, 1561.2, and 1911.2 nm, utilizing PtNi octahedral alloy nanoparticles. Furthermore, utilizing the four‐wave mixing effect induced by PtNi alloys, simultaneous five‐wavelength lasers were realized with channel spacings of 1.7 and 2.2 nm in the 1‐ and 2‐µm bands, respectively. It is found that PtNi alloys are comparable nonlinear optical modulators with other typical nanomaterials in ultrafast multiwavelength photonics. Moreover, first‐principles calculations reveal that substantial 3D states of the Ni concentrated near the Fermi level are the major cause of the enhanced optical absorption, where the surface Ni plays an important role. This work establishes a novel paradigm for developing advanced material platforms for nonlinear optical modulation, paving the way toward breakthroughs in ultrafast multiwavelength photonic systems.
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