光学镊子
小型化
钻石
材料科学
光电子学
光子学
热的
稳健性(进化)
镊子
纳米技术
光学
角动量
可扩展性
量子
光子晶体
旋转(数学)
旋光
量子点
微音学
等离子体子
光学工程
概念证明
光学传感
作者
Junwei Zhu,Ke‐Xue Li,Peinan Ni,Shang‐Heng Li,Si‐Rui Wang,Wenjie Dou,Yong‐Yang Zhu,Zhi‐Peng Wei,Chong‐Xin Shan
标识
DOI:10.1002/advs.202524086
摘要
Optical tweezers have revolutionized the manipulation of micro- and nano-scale particles, with impacts across biophysics, materials science, and quantum optics. However, their miniaturization for lab-on-a-chip applications is hindered by bulky optical components. While metasurface-based optical tweezers offer an ultracompact alternative, they suffer from laser-induced thermal effects, which degrade their performance, stability, and durability. Here, we overcome this challenge with diamond metasurfaces, leveraging the material's exceptional thermal conductivity, low thermal expansion, and high optical damage threshold to ensure structural integrity under high-power illumination. We experimentally demonstrate versatile particle manipulations using diamond metasurface optical tweezers, including 2D trapping, precise translocation, and controlled rotation via angular momentum transfer. This work not only resolves the critical thermal limitations of conventional metasurface optical tweezers but also establishes a robust platform for high-power, miniaturized optomechanical systems, paving the way for their scalable integration into demanding photonic applications.
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