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KAUST Core Labs 10 wt% kaust-7-based mmm
10 Wt% Kaust 7 Based Mmm, supplied by KAUST Core Labs, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/kaust-7-based+mmm/10+wt++kaust+7+based+mmm/pmc12261053-244-6-5
Average 90 stars, based on 1 article reviews
10 wt% kaust-7-based mmm - by Bioz Stars, 2026-09
90/100 stars

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Related Articles

Permeability:

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: The maximum Young’s modulus in KAUST-7-IDip-based MMMs is 2.5 GPa, which is ≈90% and ≈25% higher than that of the pure polymeric membrane and the optimal KAUST-7-based MMM (30 wt.%).

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: Fillers can easily agglomerate in KAUST-7-based MMM (left) and homogeneously dispersed in the matrix in KAUST-7-IDip-based MMM (right) owing to better polymer–filler interfacial compatibility in the latter. b) DFT-optimized KAUST-7-IDip structure model (top) and the corresponding electronic charge difference map (bottom).

Article Title: UiO-based Mixed Matrix Membranes for Efficient CO2 Separations.
Article Snippet: Mixed matrix membranes (MMMs) containing UiO-type MOFs have shown excellent potential for CO2 separation processes due to their unique permeability and selectivity properties.. However, while the performance of MOF-based MMMs has been widely studied, the effect of structural defects and polymer-filler compatibility are not yet fully understood.. In this work, we systematically evaluate the CO2 separation performance of Pebax® MH1657-based MMMs incorporating 5 to 20 wt% of Zr-based MOF, including UiO-66, UiO-67, and two defect-engineered UiO-66 analogues, featuring extended linker (UiO-66_A) or cluster (UiO-66_F) vacancies.

Polymer:

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: The maximum Young’s modulus in KAUST-7-IDip-based MMMs is 2.5 GPa, which is ≈90% and ≈25% higher than that of the pure polymeric membrane and the optimal KAUST-7-based MMM (30 wt.%).

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: Fillers can easily agglomerate in KAUST-7-based MMM (left) and homogeneously dispersed in the matrix in KAUST-7-IDip-based MMM (right) owing to better polymer–filler interfacial compatibility in the latter. b) DFT-optimized KAUST-7-IDip structure model (top) and the corresponding electronic charge difference map (bottom).

Article Title: UiO-based Mixed Matrix Membranes for Efficient CO2 Separations.
Article Snippet: Mixed matrix membranes (MMMs) containing UiO-type MOFs have shown excellent potential for CO2 separation processes due to their unique permeability and selectivity properties.. However, while the performance of MOF-based MMMs has been widely studied, the effect of structural defects and polymer-filler compatibility are not yet fully understood.. In this work, we systematically evaluate the CO2 separation performance of Pebax® MH1657-based MMMs incorporating 5 to 20 wt% of Zr-based MOF, including UiO-66, UiO-67, and two defect-engineered UiO-66 analogues, featuring extended linker (UiO-66_A) or cluster (UiO-66_F) vacancies.

X-ray Diffraction:

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: The maximum Young’s modulus in KAUST-7-IDip-based MMMs is 2.5 GPa, which is ≈90% and ≈25% higher than that of the pure polymeric membrane and the optimal KAUST-7-based MMM (30 wt.%).

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: Fillers can easily agglomerate in KAUST-7-based MMM (left) and homogeneously dispersed in the matrix in KAUST-7-IDip-based MMM (right) owing to better polymer–filler interfacial compatibility in the latter. b) DFT-optimized KAUST-7-IDip structure model (top) and the corresponding electronic charge difference map (bottom).

Article Title: UiO-based Mixed Matrix Membranes for Efficient CO2 Separations.
Article Snippet: Mixed matrix membranes (MMMs) containing UiO-type MOFs have shown excellent potential for CO2 separation processes due to their unique permeability and selectivity properties.. However, while the performance of MOF-based MMMs has been widely studied, the effect of structural defects and polymer-filler compatibility are not yet fully understood.. In this work, we systematically evaluate the CO2 separation performance of Pebax® MH1657-based MMMs incorporating 5 to 20 wt% of Zr-based MOF, including UiO-66, UiO-67, and two defect-engineered UiO-66 analogues, featuring extended linker (UiO-66_A) or cluster (UiO-66_F) vacancies.

Fourier Transform Infrared Spectroscopy:

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: The maximum Young’s modulus in KAUST-7-IDip-based MMMs is 2.5 GPa, which is ≈90% and ≈25% higher than that of the pure polymeric membrane and the optimal KAUST-7-based MMM (30 wt.%).

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: Fillers can easily agglomerate in KAUST-7-based MMM (left) and homogeneously dispersed in the matrix in KAUST-7-IDip-based MMM (right) owing to better polymer–filler interfacial compatibility in the latter. b) DFT-optimized KAUST-7-IDip structure model (top) and the corresponding electronic charge difference map (bottom).

Article Title: UiO-based Mixed Matrix Membranes for Efficient CO2 Separations.
Article Snippet: Mixed matrix membranes (MMMs) containing UiO-type MOFs have shown excellent potential for CO2 separation processes due to their unique permeability and selectivity properties.. However, while the performance of MOF-based MMMs has been widely studied, the effect of structural defects and polymer-filler compatibility are not yet fully understood.. In this work, we systematically evaluate the CO2 separation performance of Pebax® MH1657-based MMMs incorporating 5 to 20 wt% of Zr-based MOF, including UiO-66, UiO-67, and two defect-engineered UiO-66 analogues, featuring extended linker (UiO-66_A) or cluster (UiO-66_F) vacancies.

Spectroscopy:

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: The maximum Young’s modulus in KAUST-7-IDip-based MMMs is 2.5 GPa, which is ≈90% and ≈25% higher than that of the pure polymeric membrane and the optimal KAUST-7-based MMM (30 wt.%).

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: Fillers can easily agglomerate in KAUST-7-based MMM (left) and homogeneously dispersed in the matrix in KAUST-7-IDip-based MMM (right) owing to better polymer–filler interfacial compatibility in the latter. b) DFT-optimized KAUST-7-IDip structure model (top) and the corresponding electronic charge difference map (bottom).

Article Title: UiO-based Mixed Matrix Membranes for Efficient CO2 Separations.
Article Snippet: Mixed matrix membranes (MMMs) containing UiO-type MOFs have shown excellent potential for CO2 separation processes due to their unique permeability and selectivity properties.. However, while the performance of MOF-based MMMs has been widely studied, the effect of structural defects and polymer-filler compatibility are not yet fully understood.. In this work, we systematically evaluate the CO2 separation performance of Pebax® MH1657-based MMMs incorporating 5 to 20 wt% of Zr-based MOF, including UiO-66, UiO-67, and two defect-engineered UiO-66 analogues, featuring extended linker (UiO-66_A) or cluster (UiO-66_F) vacancies.

Electron Microscopy:

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: The maximum Young’s modulus in KAUST-7-IDip-based MMMs is 2.5 GPa, which is ≈90% and ≈25% higher than that of the pure polymeric membrane and the optimal KAUST-7-based MMM (30 wt.%).

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: Fillers can easily agglomerate in KAUST-7-based MMM (left) and homogeneously dispersed in the matrix in KAUST-7-IDip-based MMM (right) owing to better polymer–filler interfacial compatibility in the latter. b) DFT-optimized KAUST-7-IDip structure model (top) and the corresponding electronic charge difference map (bottom).

Article Title: UiO-based Mixed Matrix Membranes for Efficient CO2 Separations.
Article Snippet: Mixed matrix membranes (MMMs) containing UiO-type MOFs have shown excellent potential for CO2 separation processes due to their unique permeability and selectivity properties.. However, while the performance of MOF-based MMMs has been widely studied, the effect of structural defects and polymer-filler compatibility are not yet fully understood.. In this work, we systematically evaluate the CO2 separation performance of Pebax® MH1657-based MMMs incorporating 5 to 20 wt% of Zr-based MOF, including UiO-66, UiO-67, and two defect-engineered UiO-66 analogues, featuring extended linker (UiO-66_A) or cluster (UiO-66_F) vacancies.

Differential Scanning Calorimetry:

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: The maximum Young’s modulus in KAUST-7-IDip-based MMMs is 2.5 GPa, which is ≈90% and ≈25% higher than that of the pure polymeric membrane and the optimal KAUST-7-based MMM (30 wt.%).

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: Fillers can easily agglomerate in KAUST-7-based MMM (left) and homogeneously dispersed in the matrix in KAUST-7-IDip-based MMM (right) owing to better polymer–filler interfacial compatibility in the latter. b) DFT-optimized KAUST-7-IDip structure model (top) and the corresponding electronic charge difference map (bottom).

Article Title: UiO-based Mixed Matrix Membranes for Efficient CO2 Separations.
Article Snippet: Mixed matrix membranes (MMMs) containing UiO-type MOFs have shown excellent potential for CO2 separation processes due to their unique permeability and selectivity properties.. However, while the performance of MOF-based MMMs has been widely studied, the effect of structural defects and polymer-filler compatibility are not yet fully understood.. In this work, we systematically evaluate the CO2 separation performance of Pebax® MH1657-based MMMs incorporating 5 to 20 wt% of Zr-based MOF, including UiO-66, UiO-67, and two defect-engineered UiO-66 analogues, featuring extended linker (UiO-66_A) or cluster (UiO-66_F) vacancies.

Adsorption:

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: The maximum Young’s modulus in KAUST-7-IDip-based MMMs is 2.5 GPa, which is ≈90% and ≈25% higher than that of the pure polymeric membrane and the optimal KAUST-7-based MMM (30 wt.%).

Article Title: Mixed Matrix Membranes with Surface Functionalized Metal-Organic Framework Sieves for Efficient Propylene/Propane Separation.
Article Snippet: Fillers can easily agglomerate in KAUST-7-based MMM (left) and homogeneously dispersed in the matrix in KAUST-7-IDip-based MMM (right) owing to better polymer–filler interfacial compatibility in the latter. b) DFT-optimized KAUST-7-IDip structure model (top) and the corresponding electronic charge difference map (bottom).

Article Title: UiO-based Mixed Matrix Membranes for Efficient CO2 Separations.
Article Snippet: Mixed matrix membranes (MMMs) containing UiO-type MOFs have shown excellent potential for CO2 separation processes due to their unique permeability and selectivity properties.. However, while the performance of MOF-based MMMs has been widely studied, the effect of structural defects and polymer-filler compatibility are not yet fully understood.. In this work, we systematically evaluate the CO2 separation performance of Pebax® MH1657-based MMMs incorporating 5 to 20 wt% of Zr-based MOF, including UiO-66, UiO-67, and two defect-engineered UiO-66 analogues, featuring extended linker (UiO-66_A) or cluster (UiO-66_F) vacancies.



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