State Key Laboratory of Material Processing and Die & Mould Technology, Huazhong University of Science & Technology, Wuhan 430074, China.
Anal Chem. 2020 May 19;92(10):6925-6931. doi: 10.1021/acs.analchem.9b05606. Epub 2020 Apr 10.
Magnetic levitation (MagLev) is a promising technology for density-based analysis and manipulation of diamagnetic objects of various physical forms. However, one major drawback is that MagLev can be performed only along the central axis (one-dimensional MagLev), thereby leading to (i) no knowledge about the magnetic field in regions other than the axial region, (ii) inability to handle objects of similar densities, because they are aggregated in the axial region, and (iii) objects that can be manipulated (e.g., separated or assembled) in only one single direction, that is, the axial direction. This work explores a novel approach called "axial-circular MagLev" to expand the operational space from one dimension to three dimensions, enabling substances to be stably levitated in both the axial and circular regions. Without noticeably sacrificing the total density measurement range, the highest sensitivity of the axial-circular MagLev device can be adjusted up to 1.5 × 10 mm/(g/cm), approximately 115× better than that of the standard MagLev of two square magnets. Being able to fully utilize the operational space gives this approach greater maneuverability, as the three-dimensional self-assembly of controllable ring-shaped structures is demonstrated. Full space utilization extends the applicability of MagLev to bioengineering, pharmaceuticals, and advanced manufacturing.
磁悬浮(MagLev)是一种有前途的技术,可用于基于密度的各种物理形式的抗磁物体的分析和操作。然而,一个主要的缺点是,MagLev 只能沿着中轴线(一维 MagLev)进行,从而导致 (i) 无法了解中轴线区域以外的磁场,(ii) 无法处理类似密度的物体,因为它们聚集在中轴线区域,以及 (iii) 只能在一个单一的方向(即中轴线方向)操纵物体,例如分离或组装。这项工作探索了一种称为“轴向-圆周 MagLev”的新方法,将操作空间从一维扩展到三维,从而使物质能够在轴向和圆周区域稳定悬浮。在不明显牺牲总密度测量范围的情况下,轴向-圆周 MagLev 设备的最高灵敏度可调节至 1.5×10 mm/(g/cm),比两个正方形磁铁的标准 MagLev 高约 115 倍。能够充分利用操作空间使这种方法具有更大的机动性,因为可控环形结构的三维自组装得到了证明。充分利用空间将 MagLev 的适用性扩展到生物工程、制药和先进制造领域。