Imaging and Characterization Lab, King Abdullah University of Science and Technology (KAUST), 23955-6900 Thuwal, Saudi Arabia.
ACS Nano. 2011 May 24;5(5):3516-22. doi: 10.1021/nn200484v. Epub 2011 Apr 25.
A process is described to manufacture monodisperse asymmetric pH-responsive nanochannels with very high densities (pore density >2 × 10(14) pores per m(2)), reproducible in m(2) scale. Cylindric pores with diameters in the sub-10 nm range and lengths in the 400 nm range were formed by self-assembly of metal-block copolymer complexes and nonsolvent-induced phase separation. The film morphology was tailored by taking into account the stability constants for a series of metal-polymer complexes and confirmed by AFM. The distribution of metal-copolymer micelles was imaged by transmission electron microscopy tomography. The pH response of the polymer nanochannels is the strongest reported with synthetic pores in the nm range (reversible flux increase of more than 2 orders of magnitude when switching the pH from 2 to 8) and could be demonstrated by cryo-field emission scanning electron microscopy, SAXS, and ultra/nanofiltration experiments.
描述了一种制造具有非常高密度(每平方米孔密度>2×10(14)孔)且可重现的单分散不对称 pH 响应纳米通道的方法。亚 10nm 直径和 400nm 长度的圆柱形孔通过金属-嵌段共聚物配合物的自组装和非溶剂致相分离形成。通过考虑一系列金属-聚合物配合物的稳定常数并通过 AFM 进行确认来调整膜形态。通过透射电子显微镜断层扫描对金属-共聚物胶束的分布进行成像。该聚合物纳米通道的 pH 响应是报道的在纳米范围内具有合成孔中最强的响应(当 pH 从 2 切换到 8 时,可逆通量增加超过 2 个数量级),可以通过低温场发射扫描电子显微镜、小角 X 射线散射和超滤/纳滤实验来证明。