Jian Y C, Gao Y, Huang J P, Tao R
Surface Physics Laboratory and Department of Physics, Fudan University, Shanghai 200433, China.
J Phys Chem B. 2008 Jan 24;112(3):715-21. doi: 10.1021/jp075849h. Epub 2007 Dec 21.
By using theoretical analysis and molecular dynamics simulations, we investigate the structure of colloidal crystals formed by nonmagnetic microparticles (or magnetic holes) suspended in ferrofluids (called inverse ferrofluids), by taking into account the effect of polydispersity in size of the nonmagnetic microparticles. Such polydispersity often exists in real situations. We obtain an analytical expression for the interaction energy of monodisperse, bidisperse, and polydisperse inverse ferrofluids. Body-centered tetragonal (bct) lattices are shown to possess the lowest energy when compared with other sorts of lattices and thus serve as the ground state of the systems. Also, the effect of microparticle size distributions (namely, polydispersity in size) plays an important role in the formation of various kinds of structural configurations. Thus, it seems possible to fabricate colloidal crystals by choosing appropriate polydispersity in size.
通过理论分析和分子动力学模拟,我们研究了悬浮在铁磁流体(称为反铁磁流体)中的非磁性微粒(或磁孔)形成的胶体晶体结构,同时考虑了非磁性微粒尺寸多分散性的影响。这种多分散性在实际情况中经常存在。我们得到了单分散、双分散和多分散反铁磁流体相互作用能的解析表达式。与其他类型的晶格相比,体心四方(bct)晶格具有最低能量,因此是系统的基态。此外,微粒尺寸分布(即尺寸多分散性)的影响在各种结构构型的形成中起着重要作用。因此,通过选择合适的尺寸多分散性来制造胶体晶体似乎是可行的。