Zhou Lei-Ming, Sun Wan, Tao Zong-Qiang, Xiong Ning-Jun, Huang Chan, Jiang Xiao-Yun, Ren Yu-Xuan, Yang Yuanjie, Shi Yu-Zhi, Hu Ji-Gang, Zhan Qiwen
Department of Optical Engineering, School of Physics, Hefei University of Technology, Hefei, Anhui 230601, China.
Institute for Translational Brain Research, MOE Frontiers Center for Brain Science, Fudan University, Shanghai, 200032, China.
Nanophotonics. 2025 Jan 24;14(2):219-228. doi: 10.1515/nanoph-2024-0527. eCollection 2025 Feb.
It is generally recognized that there is only a single optical potential-well near the focus in optical traps with a focused Gaussian beam. In this work, we show that this classic Gaussian-beam optical trap has additional optical potential-wells for optical manipulation at the subwavelength scale in the off-focus transverse plane. The additional optical potential-wells are formed by the synergy of both the gradient trapping force and the transverse scattering force, though in previous studies the scattering force usually has adverse effect such as reducing trapping stability. These potential-wells work for not only the metallic particles, but also the high refractive-index dielectric particles. By engineering the contribution of the gradient force and scattering force through the particle size, the particle material and the position of the manipulation transverse plane, the force field and trapping potential-well can be tailored to trap/manipulate nanoparticles at different off-axis distance at the subwavelength scale. Our work provides new insight into optical tweezers and promises applications in optical nanomanipulation, nanoparticle sorting/separation, particle patterning and micro-fabrication on substrates.
人们普遍认为,在具有聚焦高斯光束的光阱中,焦点附近只有一个单一的光学势阱。在这项工作中,我们表明,这种经典的高斯光束光阱在离焦横向平面的亚波长尺度上具有用于光学操纵的额外光学势阱。这些额外的光学势阱是由梯度捕获力和横向散射力共同作用形成的,尽管在先前的研究中,散射力通常具有诸如降低捕获稳定性等不利影响。这些势阱不仅适用于金属颗粒,也适用于高折射率介电颗粒。通过控制颗粒尺寸、颗粒材料和操纵横向平面的位置来调节梯度力和散射力的贡献,可以定制力场和捕获势阱,以便在亚波长尺度上捕获/操纵不同离轴距离处的纳米颗粒。我们的工作为光镊提供了新的见解,并有望应用于光学纳米操纵、纳米颗粒分选/分离、颗粒图案化以及在基板上的微制造。