Pore Structure Tuning

Pore structure tuning is the deliberate control of pore size, shape, connectivity, and surface characteristics in a porous material to adjust how molecules and fluids move, react, or are stored. In chemistry, researchers modify synthesis conditions, composition, templating agents, activation treatments, or post-synthetic methods to create targeted distributions of micro-, meso-, or macropores and tailor surface functionality. These changes influence adsorption capacity, diffusion, selectivity, catalytic accessibility, and transport through the material. Pore structure tuning therefore supports the design of catalysts, adsorbents, membranes, sensors, and energy-storage materials, linking nanoscale architecture to measurable chemical performance.

Pore Structure Tuning - Related Videos

Education

JoVE Core - Civil Engineering

Pore Size Distribution

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2024

In concrete, the pore size distribution significantly influences the material's properties. Capillary pores, markedly larger than gel pores, form a vast network within partially hydrated cement paste, reducing the concrete's strength and increasing its permeability. This heightened permeability leads to a greater risk of damage from environmental factors like freeze-thaw cycles and chemical attacks, with the extent of vulnerability also being tied to the water-to-cement ratio. Adequate...

Problem-Solving: Tuning of a Guitar String

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2023

In the case of stringed instruments like the guitar, the elastic property that determines the speed of the sound produced is its linear mass density or the mass per unit length. This is simply called the linear density. If the string's linear density is constant along the string, then the linear density is simply the total mass divided by the total length. The string's wave speed can be regulated by varying the linear density. Tension is the other property that determines the speed of...

Research

JoVE Journal - Bioengineering

Multi-Scale Modification of Metallic Implants With Pore Gradients, Polyelectrolytes and Their Indirect Monitoring In vivo

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Cited by 4 •

2013

In this video, we will demonstrate modification techniques for porous metallic implants to improve their functionality and to control cell migration. Techniques include development of pore gradients to control cell movement in 3D and production of basement membrane mimics to control cell movement in 2-D. Also, a HPLC-based method for monitoring implant integration in-vivo via analysis of blood proteins is described.

Assembly, Tuning and Use of an Apertureless Near Field Infrared Microscope for Protein Imaging

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Cited by 3 •

2009

The assembly of a nearfield infrared microscope for imaging protein aggregates is described.

Fabrication and Visualization of Capillary Bridges in Slit Pore Geometry

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Cited by 4 •

2014

A procedure for creating and imaging capillary bridges in slit-pore geometry is presented. The creation of capillary bridges relies on the formation of pillars to provide a directional physical and chemical heterogeneity to pin the fluid. Capillary bridges are formed and manipulated using microstages and visualized using a CCD camera.

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