材料科学
俘获
光学力
激光器
光学镊子
三重态
共振(粒子物理)
光敏剂
光电子学
聚苯乙烯
激发
光学
原子物理学
化学
光化学
物理
激发态
生态学
复合材料
生物
量子力学
聚合物
作者
Roger Bresolí‐Obach,Santi Nonell,Hiroshi Masuhara,Johan Hofkens
标识
DOI:10.1002/adom.202200940
摘要
Abstract So far, the optical trapping potential is controlled by tuning the physical conditions of the system. Herein, for the first time, an approach, in which the induced optical force or optical potential is controlled, by an external chemical stimulus, is reported. The key to realize this is to design an optical trapping condition in conjunction with resonant excitation, the so‐called optical resonance effect (ORE). For this purpose, phenalenone, a well‐known triplet photosensitizer, is embedded inside polystyrene particles. The optical resonance effect is achieved through a two‐laser system: a 405 nm widefield laser to excite the phenalenone molecules to T 1 state and a 488 nm trapping laser to induce the T 1 – T n – T 1 resonance cycle. Thus, the triplet state is mainly responsible for the optical force enhancement. Since oxygen is an excellent triplet quencher, the triplet populations, and hence, the optical force is controlled by changing the dissolved oxygen concentration. The results presented here pave the way to chemically control the optical force through ORE with promising applications in several research fields ranging from physics to biology.
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