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电动现象诱导聚合物纳米喷嘴中的不对称传输。

Electrokinetics induced asymmetric transport in polymeric nanonozzles.

作者信息

Wang Shengnian, Hu Xin, Lee L James

机构信息

Center (NSEC) for Affordable Nanoengineering of Polymer Biomedical Devices (CANPBD), OH, USA.

出版信息

Lab Chip. 2008 Apr;8(4):573-81. doi: 10.1039/b719410b. Epub 2008 Mar 5.

Abstract

The asymmetric geometry of polymeric nanonozzles provides two different transport directions: a converging direction (from the large opening to the small opening) and a diverging direction (from the small opening to the large opening). Asymmetric transport was observed in such nanochannels for both rigid polystyrene nanoparticles and flexible DNA molecules under a DC electric bias. Small, hard nanoparticles migrate easily in the diverging direction and tend to pack inside the nanochannel in the converging direction. In contrast, large, flexible DNA molecules transport better in the converging direction than in the diverging direction. A high electric field and a high velocity gradient along the tapered region produce different geometric constrictions and vortex-like particle motions for rigid nanoparticles, and also generate various coil-stretching dynamics for DNA molecules. Such nanonozzle arrays are useful in high flux and high sieving efficiency devices for biomolecule delivery or separation, and for loading trace amounts of drugs or genes for controlled drug and gene delivery.

摘要

聚合物纳米喷嘴的不对称几何结构提供了两种不同的传输方向

汇聚方向(从大开口到小开口)和发散方向(从小开口到大开口)。在直流电场偏压下,在这种纳米通道中观察到刚性聚苯乙烯纳米颗粒和柔性DNA分子的不对称传输。小而硬的纳米颗粒很容易在发散方向迁移,并倾向于在汇聚方向堆积在纳米通道内。相比之下,大而柔性的DNA分子在汇聚方向的传输比在发散方向更好。沿着锥形区域的高电场和高速度梯度为刚性纳米颗粒产生不同的几何收缩和涡旋状颗粒运动,也为DNA分子产生各种线圈拉伸动力学。这种纳米喷嘴阵列可用于高通量和高筛分效率的生物分子递送或分离装置,以及用于装载痕量药物或基因以进行可控药物和基因递送。

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