Gruener, SimonSimonGruenerHuber, PatrickPatrickHuber2022-06-072022-06-072008-02-13Physical Review Letters 100 (6): 064502 (2008-02-13)http://hdl.handle.net/11420/12824Measurements on helium and argon gas flow through an array of parallel, linear channels of 12 nm diameter and 200 micrometer length in a single crystalline silicon membrane reveal a Knudsen diffusion type transport from 10^2 to 10^7 in Knudsen number Kn. The classic scaling prediction for the transport diffusion coefficient on temperature and mass of diffusing species,D_He ~ sqrt(T), is confirmed over a T range from 40 K to 300 K for He and for the ratio of D_He/D_Ar ~ sqrt(m_Ar/m_He). Deviations of the channels from a cylindrical form, resolved with transmission electron microscopy down to subnanometer scales, quantitatively account for a reduced diffusivity as compared to Knudsen diffusion in ideal tubular channels. The membrane permeation experiments are described over 10 orders of magnitude in Kn, encompassing the transition flow regime, by the unified flow model of Beskok and Karniadakis.en1079-7114Physical review letters20086American Physical SocietyPhysics - Fluid DynamicsPhysics - Fluid DynamicsPhysics - Materials SciencePhysics - Statistical MechanicsNonlinear Sciences - Exactly Solvable and Integrable SystemsPhysics - Chemical PhysicsPhysikKnudsen diffusion in silicon nanochannelsJournal Article10.1103/PhysRevLett.100.0645020802.1852v1Other