Peng Miao, Luo Hui, Xiong Wei, Kuang Tengfang, Chen Xinlin, Han Xiang, Xiao Guangzong, Tan Zhongqi
Opt Express. 2022 Dec 19;30(26):46060-46069. doi: 10.1364/OE.474927.
Optical trapping and manipulating nanoparticles are essential tools for interrogating biomedicine at the limits of space and time. Typically, silica or polystyrene microspheres are used as photonic force probes. However, adapting those probes to organic solvents is an ongoing challenge due to the limited solvent compatibility and low refractive index mismatch. Here we report on the optical force enhancement and solvent compatibility that utilizes ZrO@TiO core-shell nanoparticles. We experimentally demonstrate that the 450-nm-diameter ZrO@TiO core-shell nanoparticles achieve the lateral and axial trap stiffness up to 0.45 pN µm mW and 0.43 pN µm mW in water, showing more than fivefold and ninefold improvement on the ordinary SiO particle of the same size. In addition, ZrO@TiO core-shell nanoparticles can realize stable three-dimensional trapping in both polyethylene glycol and glucose solutions. This optical trapping enhancement property, coupled with solvent compatibility, expands the range of feasible optical trapping experiments and will pave the way toward more advanced biological applications.
光镊捕获和操纵纳米颗粒是在空间和时间极限下研究生物医学的重要工具。通常,二氧化硅或聚苯乙烯微球用作光子力探针。然而,由于有限的溶剂兼容性和低折射率失配,使这些探针适用于有机溶剂仍是一个持续存在的挑战。在此,我们报道了利用ZrO@TiO核壳纳米颗粒实现的光力增强和溶剂兼容性。我们通过实验证明,直径为450 nm的ZrO@TiO核壳纳米颗粒在水中实现的横向和轴向捕获刚度分别高达0.45 pN µm mW和0.43 pN µm mW,比相同尺寸的普通SiO颗粒提高了五倍多和九倍多。此外,ZrO@TiO核壳纳米颗粒可以在聚乙二醇和葡萄糖溶液中实现稳定的三维捕获。这种光镊增强特性与溶剂兼容性相结合,扩展了可行的光镊实验范围,并将为更先进的生物应用铺平道路。