Institute of Physics, University of Amsterdam, 1098XH Amsterdam, The Netherlands.
Soft Matter. 2018 Feb 14;14(7):1080-1087. doi: 10.1039/c7sm02174g.
For magnetite spherical nanoparticles, the orientation of the dipole moment in the crystal does not affect the morphology of either zero field or field induced structures. For non-spherical particles however, an interplay between particle shape and direction of the magnetic moment can give rise to unusual behaviors, in particular when the moment is not aligned along a particle symmetry axis. Here we disclose for the first time the unique magnetic properties of hematite cubic particles and show the exact orientation of the cubes' dipole moment. Using a combination of experiments and computer simulations, we show that dipolar hematite cubes self-organize into dipolar chains with morphologies remarkably different from those of spheres, and demonstrate that the emergence of these structures is driven by competing anisotropic interactions caused by the particles' shape anisotropy and their fixed dipole moment. Furthermore, we have analytically identified a specific interplay between energy, and entropy at the microscopic level and found that an unorthodox entropic contribution mediates the organization of particles into the kinked nature of the dipolar chains.
对于磁铁矿球形纳米粒子,晶体中偶极矩的方向不会影响零场或磁场诱导结构的形态。然而,对于非球形粒子,粒子形状和磁矩方向之间的相互作用会导致异常行为,特别是当磁矩不沿着粒子对称轴对齐时。在这里,我们首次揭示了赤铁矿立方粒子的独特磁性,并展示了立方粒子偶极矩的确切取向。我们使用实验和计算机模拟的组合,表明偶极赤铁矿立方体会自组织成具有明显不同于球体的形态的偶极链,并证明这些结构的出现是由粒子的形状各向异性和固定偶极矩引起的竞争各向异性相互作用驱动的。此外,我们还从微观层面分析确定了能量和熵之间的特定相互作用,并发现一种非传统的熵贡献介导了粒子在曲折的偶极链中的组织。