Charge- and size-based separation of macromolecules using ultrathin silicon membranes
Top Cited Papers
- 1 February 2007
- journal article
- Published by Springer Nature in Nature
- Vol. 445 (7129), 749-753
- https://doi.org/10.1038/nature05532
Abstract
Commercial ultrafiltration and dialysis membranes have broad pore size distributions and are over 1,000 times thicker than the molecules they are designed to separate, leading to poor size cut-off properties, filtrate loss within the membranes, and low transport rates. Nanofabricated membranes have great potential in molecular separation applications by offering more precise structural control, yet transport is also limited by micrometre-scale thicknesses. This limitation can be addressed by a new class of ultrathin nanostructured membranes where the membrane is roughly as thick (approximately 10 nm) as the molecules being separated, but membrane fragility and complex fabrication have prevented the use of ultrathin membranes for molecular separations. Here we report the development of an ultrathin porous nanocrystalline silicon (pnc-Si) membrane using straightforward silicon fabrication techniques that provide control over average pore sizes from approximately 5 nm to 25 nm. Our pnc-Si membranes can retain proteins while permitting the transport of small molecules at rates an order of magnitude faster than existing materials, separate differently sized proteins under physiological conditions, and separate similarly sized molecules carrying different charges. Despite being only 15 nm thick, pnc-Si membranes that are free-standing over 40,000 microm2 can support a full atmosphere of differential pressure without plastic deformation or fracture. By providing efficient, low-loss macromolecule separations, pnc-Si membranes are expected to enable a variety of new devices, including membrane-based chromatography systems and both analytical and preparative microfluidic systems that require highly efficient separations.Keywords
This publication has 18 references indexed in Scilit:
- Tailoring width of microfabricated nanochannels to solute size can be used to control diffusion kineticsJournal of Controlled Release, 2004
- Freely suspended nanocomposite membranes as highly sensitive sensorsNature Materials, 2004
- Self-assembly of a silica–surfactant nanocomposite in a porous alumina membraneNature Materials, 2004
- Silicon Nitride Nanosieve MembraneNano Letters, 2004
- Electromodulated Molecular Transport in Gold-Nanotube MembranesJournal of the American Chemical Society, 2002
- Electronic Speckle Pattern Interferometry: A Tool for Determining Diffusion and Partition Coefficients for Proteins in GelsBiotechnology Progress, 2002
- Confinement effects in crystallization and Er doping of Si nanostructuresPhysica E: Low-dimensional Systems and Nanostructures, 2001
- Thermal crystallization of amorphous Si/SiO2 superlatticesApplied Physics Letters, 1999
- Crystal grain nucleation in amorphous siliconJournal of Applied Physics, 1998
- Development and applications of very high flux microfiltration membranesJournal of Membrane Science, 1998