Javascript must be enabled to continue!
Using Excimer Laser for Manufacturing Stimuli Responsive Membranes
View through CrossRef
A 248 nm KrF excimer laser can be used to manufacture temperature and pH-responsive polymer-based membranes for controlled transport applications. This is done by a two-step approach. In the first step, well-defined/shaped and orderly pores are created on commercially available polymer films by ablation by using an excimer laser. The same laser is used subsequently for energetic grafting and polymerization of a responsive hydrogel polymer inside the pores fabricated during the first step. Thus, these smart membranes allow controllable solute transport. In this paper, determination of appropriate laser parameters and grafting solution characteristics are illustrated to obtain the desired membrane performance. Fabrication of membranes with 600 nm to 25 μm pore sizes by using the laser through different metal mesh templates is discussed first. Laser fluence and the number of pulses need to be optimized to obtain the desired pore size. Mesh size and film thickness primarily control the pore sizes. Typically, pore size increases with increasing fluence and the number of pulses. Larger pores can be created by using higher fluence at a given laser energy. The vertical cross-section of the pores turns out to be inherently tapered due to the ablative action of the laser beam. The pores created by laser ablation can be grafted with PNIPAM hydrogel by using the same laser to perform a bottom-up grafting-from type pulsed laser polymerization (PLP) in order to achieve the desired transport function controlled by temperature. For this purpose, a set of laser frequencies and pulse numbers need to be determined to obtain the desired hydrogel grafting density and the extent of cross-linking, which ultimately provide controlled transport by smart gating. In other words, on-demand switchable solute release rates can be achieved by controlling the cross-linking level of the microporous PNIPAM network. The PLP process is extremely fast (few seconds) and provides higher water permeability above the lower critical solution temperature (LCST) of the hydrogel. Experiments have shown high mechanical integrity for these pore-filled membranes, which can sustain pressures up to 0.31 MPa. The monomer (NIPAM) and cross-linker (mBAAm) concentrations in the grafting solution need to be optimized in order to control the network growth inside the support membrane pores. The cross-linker concentration typically has a stronger effect on the temperature responsiveness. The pulsed laser polymerization process described can be extended to different unsaturated monomers, which can be polymerized by the free radical process. For example, poly(acrylic acid) can be the grafted to provide pH responsiveness to membranes. As for the effects of thickness, a decreasing trend is observed in the permeability coefficient with increasing thickness. Furthermore, the film thickness has little or no effect on PLP kinetics. The experimental results have shown that membranes manufactured by excimer laser are excellent choices for applications where flow uniformity is the prime requirement, as they possess uniform pore sizes and distribution.
Title: Using Excimer Laser for Manufacturing Stimuli Responsive Membranes
Description:
A 248 nm KrF excimer laser can be used to manufacture temperature and pH-responsive polymer-based membranes for controlled transport applications.
This is done by a two-step approach.
In the first step, well-defined/shaped and orderly pores are created on commercially available polymer films by ablation by using an excimer laser.
The same laser is used subsequently for energetic grafting and polymerization of a responsive hydrogel polymer inside the pores fabricated during the first step.
Thus, these smart membranes allow controllable solute transport.
In this paper, determination of appropriate laser parameters and grafting solution characteristics are illustrated to obtain the desired membrane performance.
Fabrication of membranes with 600 nm to 25 μm pore sizes by using the laser through different metal mesh templates is discussed first.
Laser fluence and the number of pulses need to be optimized to obtain the desired pore size.
Mesh size and film thickness primarily control the pore sizes.
Typically, pore size increases with increasing fluence and the number of pulses.
Larger pores can be created by using higher fluence at a given laser energy.
The vertical cross-section of the pores turns out to be inherently tapered due to the ablative action of the laser beam.
The pores created by laser ablation can be grafted with PNIPAM hydrogel by using the same laser to perform a bottom-up grafting-from type pulsed laser polymerization (PLP) in order to achieve the desired transport function controlled by temperature.
For this purpose, a set of laser frequencies and pulse numbers need to be determined to obtain the desired hydrogel grafting density and the extent of cross-linking, which ultimately provide controlled transport by smart gating.
In other words, on-demand switchable solute release rates can be achieved by controlling the cross-linking level of the microporous PNIPAM network.
The PLP process is extremely fast (few seconds) and provides higher water permeability above the lower critical solution temperature (LCST) of the hydrogel.
Experiments have shown high mechanical integrity for these pore-filled membranes, which can sustain pressures up to 0.
31 MPa.
The monomer (NIPAM) and cross-linker (mBAAm) concentrations in the grafting solution need to be optimized in order to control the network growth inside the support membrane pores.
The cross-linker concentration typically has a stronger effect on the temperature responsiveness.
The pulsed laser polymerization process described can be extended to different unsaturated monomers, which can be polymerized by the free radical process.
For example, poly(acrylic acid) can be the grafted to provide pH responsiveness to membranes.
As for the effects of thickness, a decreasing trend is observed in the permeability coefficient with increasing thickness.
Furthermore, the film thickness has little or no effect on PLP kinetics.
The experimental results have shown that membranes manufactured by excimer laser are excellent choices for applications where flow uniformity is the prime requirement, as they possess uniform pore sizes and distribution.
Related Results
Excimer Laser Micromachining of MEMS Materials
Excimer Laser Micromachining of MEMS Materials
Conventional photolithography-based microfabrication techniques are limited to two-dimensional fabrication and only particular materials can be used. Excimer laser micromachining e...
CO<sub>2</sub>, Excimer and Erbium:YAG Laser in Deep Sclerectomy
CO<sub>2</sub>, Excimer and Erbium:YAG Laser in Deep Sclerectomy
<i>Purpose:</i> Deep sclerectomy is a non-penetrating filtering procedure that is not generally accepted, as tissue dissection is difficult and varying success rates ha...
LEO-to-GNSS Laser Interferometer for Space Geodesy with Laser DORIS and Laser SAR
LEO-to-GNSS Laser Interferometer for Space Geodesy with Laser DORIS and Laser SAR
In order to increase the accuracy of precise orbit determination for a single satellite or satellites in LEO formation, we propose using a LEO-to-GNSS laser interferometer, what we...
Laser Spectrometric Techniques in Analytical Atomic Spectrometry
Laser Spectrometric Techniques in Analytical Atomic Spectrometry
Abstract
Laser light has a number of spectacular properties that make it useful for analytical spectrometry. One is that it has a high directionality (i.e. i...
Use of Organic Solvent Nanofiltration (OSN) membranes for Counter-Current Chromatography (CCC) solvent recovery
Use of Organic Solvent Nanofiltration (OSN) membranes for Counter-Current Chromatography (CCC) solvent recovery
Solvent resistant membranes are a relatively new technology which has the potential to expand the possible utilities of membranes for process industries. Little is known in terms o...
Subliminal emotional pictures are capable to modulate early cerebral responses to pain in fibromyalgia v1
Subliminal emotional pictures are capable to modulate early cerebral responses to pain in fibromyalgia v1
Participants A total of fifty-six right-handed women (29 healthy control (HC) subjects and 27 FM patients) took part in the experiment. All participants were aged between 33 and 63...
Electrowetting–induced photochemical surface modification onto fluorocarbon
Electrowetting–induced photochemical surface modification onto fluorocarbon
ABSTRACTThe PTFE was modified into hydrophilic with 1/100 of the shots number required to obtain the same contact angle with water by the laser irradiation alone, when irradiating ...
Excimer Light versus Combination of Tacrolimus and Excimer Light in the Treatment of Alopecia Areata
Excimer Light versus Combination of Tacrolimus and Excimer Light in the Treatment of Alopecia Areata
Background. Alopecia areata (AA) is a nonscarring alopecia that can affect any hairy area of the body. Excimer light at 308 nm with immunosuppressive effects is recommended as a pr...

