Porous Materials

Porous materials are solids containing interconnected or isolated voids that give them distinctive properties such as low density, high surface area, permeability, and selective transport. Their behavior depends on pore size, shape, connectivity, and surface chemistry, which control how fluids, gases, heat, and molecules move through or interact with the material. In engineering, porous materials support filtration, catalysis, adsorption, separation, energy storage, thermal insulation, and lightweight structural design. By tuning composition and pore architecture through methods such as foaming, sintering, or templating, researchers can tailor performance for applications ranging from water treatment and chemical processing to biomedical devices and sustainable manufacturing.

Porous Materials - Related Videos

Research

JoVE Journal - Chemistry

Supercritical Nitrogen Processing for the Purification of Reactive Porous Materials

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Cited by 9 •

2015

Nitrogen is an effective supercritical fluid for extraction or drying processes due to its small molecular size, high density in the near-liquid supercritical regime, and chemical inertness. We present a supercritical nitrogen drying protocol for the purification treatment of reactive, porous materials.

Assembly of Porous Monolithic Materials Using a Pickering Emulsion Strategy Stabilized by Metal–Organic Framework (MOF) Particles

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2026

This study successfully uses MIL-96(Al) Metal-Organic Frameworks particles to stabilize Pickering emulsions, which serve as templates to form mechanically robust, hierarchically porous monolithic materials. This method allows scalable MOF shaping while preserving crystal integrity. Tuning formulation is key to controlling pore size, interconnectivity, permeability, and robustness.

Microfabrication of Nanoporous Gold Patterns for Cell-material Interaction Studies

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Cited by 16 •

2013

We report on techniques to micropattern nanoporous gold thin films via stencil printing and photolithography, as well as methods to culture cells on the microfabricated patterns. In addition, we describe image analysis methods to characterize morphology of the material and the cultured cells using scanning electron and fluorescence microscopy techniques.

Characterization of Full Set Material Constants and Their Temperature Dependence for Piezoelectric Materials Using Resonant Ultrasound Spectroscopy

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Cited by 8 •

2016

This protocol describes the procedure of measuring the temperature dependence of the full set material constants of piezoelectric materials using resonant ultrasound spectroscopy (RUS).

Education

JoVE Science Education - Engineering

Material Constants

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2023

Source: Roberto Leon, Department of Civil and Environmental Engineering, Virginia Tech, Blacksburg, VA In contrast to the production of cars or toasters, where millions of identical copies are made and extensive prototype testing is possible, each civil engineering structure is unique and very expensive to reproduce (Fig.1). Therefore, civil engineers must extensively rely on analytical modeling to design their structures. These models are simplified abstractions of reality and are used to...

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