Naval Research Laboratory, 4555 Overlook Ave., SW Chemistry Division, Code 6112, Washington, DC 20375-5342, USA.
J Chromatogr A. 2010 Nov 5;1217(45):7153-7. doi: 10.1016/j.chroma.2010.09.009. Epub 2010 Sep 15.
The packing of submicrometer sized silica beads inside a microchannel was enabled by a novel method which avoids the complication and limitations of generating a frit using conventional approaches and the restriction of flow using a submicrometer sized weir. A micrometer sized weir and two short columns of 5 μm and 800 nm silica beads packed in succession behind the weir together functioned as a high pressure frit to allow the construction of a primary packed bed of 390 nm silica beads. This packed bed microchannel was tested as an EOF pump, wherein it exhibited superior performance with regards to pressure tolerance, i.e., sustaining good flow rate under extremely high back pressure, and maximal pressure generation. Under a modest applied electric field strength of 150 V/cm, the flow rate against a back pressure of 1200 psi (∼8.3 MPa) was 40 nL/min, and the maximal pressure reached 1470 psi (∼10 MPa). This work has demonstrated that it is possible to create a high performance packed bed microchannel EOF pump using nanometer sized silica beads, as long as proper care is taken during the packing process to minimize the undesirable mixing of two different sized particles at the boundaries between particle segments and to maximize the packing density throughout the entire packed bed.
通过一种新方法实现了亚微米尺寸的硅胶珠在微通道内的填充,该方法避免了使用传统方法生成 frit 的复杂性和局限性,以及使用亚微米尺寸堰限制流动的问题。一个微米尺寸的堰和两个短的 5 μm 和 800 nm 硅胶珠柱依次排列在堰后面,共同作为高压 frit 来构建 390nm 硅胶珠的初级填充床。该填充床微通道被用作 EOF 泵进行测试,在耐压方面表现出了优异的性能,即在极高的背压下仍能保持良好的流速,并且能够产生最大的压力。在适度的 150V/cm 电场强度下,在 1200psi(约 8.3MPa)的背压下的流速为 40nL/min,最大压力达到 1470psi(约 10MPa)。这项工作表明,只要在填充过程中小心操作,以尽量减少颗粒段之间边界处两种不同尺寸颗粒的不期望混合,并在整个填充床中最大化填充密度,就有可能使用纳米尺寸的硅胶珠来制造高性能的填充床微通道 EOF 泵。