Nanomembranes represent a novel building block for nanosystems, characterized by a thickness below 100 nm and a giant aspect ratios. A typical procedure for nanomembrane fabrication starts from an ultrathin layer deposited on some kind of a sacrificial substrate. The nanomembrane is released by etching away the substrate, leaving the nanomembrane to freely float in the solvent. This solvent may be water or some other liquid. Many different types of nanomembranes can be made by this procedure, but only a limited number can survive the capillary forces during the extraction from solvent. In this paper we propose a novel, generally applicable method for freeing nanomembranes from the solvent via direct in-situ substitution of the solvent in me...
Nanometer-sized menisci of polar and nonpolar liquids are used to confine chemical reactions. Electr...
Loose nanofiltration (NF) membranes with diverse selectivity can meet the great demands in various b...
Turchanin A, Gölzhäuser A. Carbon Nanomembranes. ADVANCED MATERIALS. 2016;28(29):6075-6103.Carbon na...
Nanomembranes represent a novel building block for nanosystems, characterized by a thickness below 1...
Concealing of surface topology of substrates by decal-like attachment of nanomembrane is demonstrate...
Free-standing two-dimensional nanostrucutures, such as graphene and semiconductor nanomembranes (NMs...
A wide range of nano-objects are synthesized by combining template synthesis, using polycarbonate me...
re 0 n t m all. om us ns fro ls. du be well described by the Young–Laplace equation. On a nanoscopic...
Electrospun nanowebs with pores ranging from nanometers to micrometers, constitute new materials wit...
We present a synthetic route for the realization of ultrathin freestanding nanoparticle membranes th...
Freestanding nanoparticle membranes over circular wells are prepared by utilizing surface engineerin...
Freestanding nanoparticle membranes over circular wells are prepared by utilizing surface engineerin...
Nanoscale materials are frequently coated with surface stabilization layers during growth that preve...
Nanoparticle surfactants (NPSs) assembled at the oil-water interface can significantly lower the int...
Nanoparticle surfactants (NPSs) assembled at the oil-water interface can significantly lower the int...
Nanometer-sized menisci of polar and nonpolar liquids are used to confine chemical reactions. Electr...
Loose nanofiltration (NF) membranes with diverse selectivity can meet the great demands in various b...
Turchanin A, Gölzhäuser A. Carbon Nanomembranes. ADVANCED MATERIALS. 2016;28(29):6075-6103.Carbon na...
Nanomembranes represent a novel building block for nanosystems, characterized by a thickness below 1...
Concealing of surface topology of substrates by decal-like attachment of nanomembrane is demonstrate...
Free-standing two-dimensional nanostrucutures, such as graphene and semiconductor nanomembranes (NMs...
A wide range of nano-objects are synthesized by combining template synthesis, using polycarbonate me...
re 0 n t m all. om us ns fro ls. du be well described by the Young–Laplace equation. On a nanoscopic...
Electrospun nanowebs with pores ranging from nanometers to micrometers, constitute new materials wit...
We present a synthetic route for the realization of ultrathin freestanding nanoparticle membranes th...
Freestanding nanoparticle membranes over circular wells are prepared by utilizing surface engineerin...
Freestanding nanoparticle membranes over circular wells are prepared by utilizing surface engineerin...
Nanoscale materials are frequently coated with surface stabilization layers during growth that preve...
Nanoparticle surfactants (NPSs) assembled at the oil-water interface can significantly lower the int...
Nanoparticle surfactants (NPSs) assembled at the oil-water interface can significantly lower the int...
Nanometer-sized menisci of polar and nonpolar liquids are used to confine chemical reactions. Electr...
Loose nanofiltration (NF) membranes with diverse selectivity can meet the great demands in various b...
Turchanin A, Gölzhäuser A. Carbon Nanomembranes. ADVANCED MATERIALS. 2016;28(29):6075-6103.Carbon na...