Li Yixiang, Qiu Chunyin, Xu Shengjun, Ke Manzhu, Liu Zhengyou
Key Laboratory of Artificial Micro- and Nano-structures of Ministry of Education and School of Physics and Technology, Wuhan University, Wuhan 430072, China.
Institute for Advanced Studies, Wuhan University, Wuhan 430072, China.
Sci Rep. 2015 Aug 17;5:13063. doi: 10.1038/srep13063.
Conventional microparticle transports by light or sound are realized along a straight line. Recently, this limit has been overcome in optics as the growing up of the self-accelerating Airy beams, which are featured by many peculiar properties, e.g., bending propagation, diffraction-free and self-healing. However, the bending angles of Airy beams are rather small since they are only paraxial solutions of the two-dimensional (2D) Helmholtz equation. Here we propose a novel micromanipulation by using acoustic Half-Bessel beams, which are strict solutions of the 2D Helmholtz equation. Compared with that achieved by Airy beams, the bending angle of the particle trajectory attained here is much steeper (exceeding 90(o)). The large-angle bending transport of microparticles, which is robust to complex scattering environment, enables a wide range of applications from the colloidal to biological sciences.
传统的通过光或声音实现的微粒传输是沿直线进行的。最近,随着具有许多奇特特性(例如弯曲传播、无衍射和自愈)的自加速艾里光束的出现,光学领域克服了这一限制。然而,艾里光束的弯曲角度相当小,因为它们只是二维(2D)亥姆霍兹方程的傍轴解。在此,我们提出一种利用声学半贝塞尔光束的新型微操纵方法,声学半贝塞尔光束是二维亥姆霍兹方程的严格解。与艾里光束实现的情况相比,此处获得的粒子轨迹弯曲角度要陡得多(超过90°)。微粒的大角度弯曲传输对复杂散射环境具有鲁棒性,这使得它在从胶体科学到生物科学的广泛领域都有应用。