The design and development of many separation and catalytic process technologies require a proper quantitative description of diffusion of mixtures of guest molecules within porous crystalline materials. This tutorial review presents a unified, phenomenological description of diffusion inside meso- and micro-porous structures. In meso-porous materials, with pore sizes 2 nm < dp < 50 nm, there is a central core region where the influence of interactions of the molecules with the pore wall is either small or negligible; meso-pore diffusion is governed by a combination of molecule-molecule and molecule-pore wall interactions. Within micro-pores, with dp < 2 nm, the guest molecules are always under the influence of the force field exerted with ...
Diffusion is an omnipresent, most fundamental phenomenon in nature and thus critical for the perform...
The pulsed-field gradient NMR method has been applied to study self-diffusion of liquids in mesoporo...
In this workshop we will discuss some fundamentals of equilibrium and non-equilibrium thermodynamics...
The design and development of many emerging separation and catalytic process technologies require a ...
The diffusion behavior of guest molecules introduced in porous materials has been studied. Diffusion...
In a variety of practical applications involving microporous materials such as zeolites and metal or...
The efficacy of nanoporous crystalline materials in separation applications is often influenced to a...
Separation of mixtures using microporous crystalline materials is normally achieved by exploiting di...
The Maxwell-Stefan (M-S) formulation, that is grounded in the theory of irreversible thermodynamics,...
The Maxwell-Stefan (M-S) formulation for binary mixture diffusion in micro-porous materials such as ...
The Maxwell-Stefan (M-S) formulation for binary mixture diffusion in micro-porous materials such as ...
Nanoporous solids are ubiquitous in chemical, energy, and environmental processes, where controlled ...
International audienceMethane diffusion in micro- and mesopores of carbonaceous materials is dominat...
The understanding of mass transport in narrow pores, it is an important problem of long standing int...
Molecular transport in confined spaces plays a fundamental role in well-established and emerging tec...
Diffusion is an omnipresent, most fundamental phenomenon in nature and thus critical for the perform...
The pulsed-field gradient NMR method has been applied to study self-diffusion of liquids in mesoporo...
In this workshop we will discuss some fundamentals of equilibrium and non-equilibrium thermodynamics...
The design and development of many emerging separation and catalytic process technologies require a ...
The diffusion behavior of guest molecules introduced in porous materials has been studied. Diffusion...
In a variety of practical applications involving microporous materials such as zeolites and metal or...
The efficacy of nanoporous crystalline materials in separation applications is often influenced to a...
Separation of mixtures using microporous crystalline materials is normally achieved by exploiting di...
The Maxwell-Stefan (M-S) formulation, that is grounded in the theory of irreversible thermodynamics,...
The Maxwell-Stefan (M-S) formulation for binary mixture diffusion in micro-porous materials such as ...
The Maxwell-Stefan (M-S) formulation for binary mixture diffusion in micro-porous materials such as ...
Nanoporous solids are ubiquitous in chemical, energy, and environmental processes, where controlled ...
International audienceMethane diffusion in micro- and mesopores of carbonaceous materials is dominat...
The understanding of mass transport in narrow pores, it is an important problem of long standing int...
Molecular transport in confined spaces plays a fundamental role in well-established and emerging tec...
Diffusion is an omnipresent, most fundamental phenomenon in nature and thus critical for the perform...
The pulsed-field gradient NMR method has been applied to study self-diffusion of liquids in mesoporo...
In this workshop we will discuss some fundamentals of equilibrium and non-equilibrium thermodynamics...