Diffusion of dilute gas in arrays of randomly distributed, vertically aligned, high-aspect-ratio cylinders

In this work we modelled the diffusive transport of a dilute gas along arrays of randomly distributed, vertically aligned nanocylinders (nanotubes or nanowires) as opposed to gas diffusion in long pores, which is described by the well-known Knudsen theory. Analytical expressions for (i) the gas diff...

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Main Authors: Wojciech Szmyt, Carlos Guerra, Ivo Utke
Format: Article
Language:English
Published: Beilstein-Institut 2017-01-01
Series:Beilstein Journal of Nanotechnology
Subjects:
Online Access:https://doi.org/10.3762/bjnano.8.7
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spelling doaj-bab7e2cc026f4209afba560dc50a39842020-11-24T23:51:20ZengBeilstein-InstitutBeilstein Journal of Nanotechnology2190-42862017-01-0181647310.3762/bjnano.8.72190-4286-8-7Diffusion of dilute gas in arrays of randomly distributed, vertically aligned, high-aspect-ratio cylindersWojciech Szmyt0Carlos Guerra1Ivo Utke2Empa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Mechanics of Materials and Nanostructures, Feuerwerkerstrasse 39, 3602 Thun, SwitzerlandEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Mechanics of Materials and Nanostructures, Feuerwerkerstrasse 39, 3602 Thun, SwitzerlandEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Mechanics of Materials and Nanostructures, Feuerwerkerstrasse 39, 3602 Thun, SwitzerlandIn this work we modelled the diffusive transport of a dilute gas along arrays of randomly distributed, vertically aligned nanocylinders (nanotubes or nanowires) as opposed to gas diffusion in long pores, which is described by the well-known Knudsen theory. Analytical expressions for (i) the gas diffusion coefficient inside such arrays, (ii) the time between collisions of molecules with the nanocylinder walls (mean time of flight), (iii) the surface impingement rate, and (iv) the Knudsen number of such a system were rigidly derived based on a random-walk model of a molecule that undergoes memoryless, diffusive reflections from nanocylinder walls assuming the molecular regime of gas transport. It can be specifically shown that the gas diffusion coefficient inside such arrays is inversely proportional to the areal density of cylinders and their mean diameter. An example calculation of a diffusion coefficient is delivered for a system of titanium isopropoxide molecules diffusing between vertically aligned carbon nanotubes. Our findings are important for the correct modelling and optimisation of gas-based deposition techniques, such as atomic layer deposition or chemical vapour deposition, frequently used for surface functionalisation of high-aspect-ratio nanocylinder arrays in solar cells and energy storage applications. Furthermore, gas sensing devices with high-aspect-ratio nanocylinder arrays and the growth of vertically aligned carbon nanotubes need the fundamental understanding and precise modelling of gas transport to optimise such processes.https://doi.org/10.3762/bjnano.8.7dilute gasgas transportmolecular diffusionnanocylindersrandom walk
collection DOAJ
language English
format Article
sources DOAJ
author Wojciech Szmyt
Carlos Guerra
Ivo Utke
spellingShingle Wojciech Szmyt
Carlos Guerra
Ivo Utke
Diffusion of dilute gas in arrays of randomly distributed, vertically aligned, high-aspect-ratio cylinders
Beilstein Journal of Nanotechnology
dilute gas
gas transport
molecular diffusion
nanocylinders
random walk
author_facet Wojciech Szmyt
Carlos Guerra
Ivo Utke
author_sort Wojciech Szmyt
title Diffusion of dilute gas in arrays of randomly distributed, vertically aligned, high-aspect-ratio cylinders
title_short Diffusion of dilute gas in arrays of randomly distributed, vertically aligned, high-aspect-ratio cylinders
title_full Diffusion of dilute gas in arrays of randomly distributed, vertically aligned, high-aspect-ratio cylinders
title_fullStr Diffusion of dilute gas in arrays of randomly distributed, vertically aligned, high-aspect-ratio cylinders
title_full_unstemmed Diffusion of dilute gas in arrays of randomly distributed, vertically aligned, high-aspect-ratio cylinders
title_sort diffusion of dilute gas in arrays of randomly distributed, vertically aligned, high-aspect-ratio cylinders
publisher Beilstein-Institut
series Beilstein Journal of Nanotechnology
issn 2190-4286
publishDate 2017-01-01
description In this work we modelled the diffusive transport of a dilute gas along arrays of randomly distributed, vertically aligned nanocylinders (nanotubes or nanowires) as opposed to gas diffusion in long pores, which is described by the well-known Knudsen theory. Analytical expressions for (i) the gas diffusion coefficient inside such arrays, (ii) the time between collisions of molecules with the nanocylinder walls (mean time of flight), (iii) the surface impingement rate, and (iv) the Knudsen number of such a system were rigidly derived based on a random-walk model of a molecule that undergoes memoryless, diffusive reflections from nanocylinder walls assuming the molecular regime of gas transport. It can be specifically shown that the gas diffusion coefficient inside such arrays is inversely proportional to the areal density of cylinders and their mean diameter. An example calculation of a diffusion coefficient is delivered for a system of titanium isopropoxide molecules diffusing between vertically aligned carbon nanotubes. Our findings are important for the correct modelling and optimisation of gas-based deposition techniques, such as atomic layer deposition or chemical vapour deposition, frequently used for surface functionalisation of high-aspect-ratio nanocylinder arrays in solar cells and energy storage applications. Furthermore, gas sensing devices with high-aspect-ratio nanocylinder arrays and the growth of vertically aligned carbon nanotubes need the fundamental understanding and precise modelling of gas transport to optimise such processes.
topic dilute gas
gas transport
molecular diffusion
nanocylinders
random walk
url https://doi.org/10.3762/bjnano.8.7
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AT carlosguerra diffusionofdilutegasinarraysofrandomlydistributedverticallyalignedhighaspectratiocylinders
AT ivoutke diffusionofdilutegasinarraysofrandomlydistributedverticallyalignedhighaspectratiocylinders
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