1
Return

Tuning the Permeability–Selectivity Trade-Off in Activated Carbon/PES Mixed Matrix Membranes via Compaction and Vapor-Induced Phase Separation

delete2026-07-26
delete0
delete
OA
AI
A
Asseghaf Bintang Ramadhani
J
Jason Nathanael Thionardo
M
Muhammad Mirza Rahardianto
A
Annas Zakky Firmansyah
K
Kartika Nur ‘Anisa’
C
Chandrawati Putri Wulandari
M
Muslim Mahardika
Y
Yudan Whulanza
A
Ario Sunar Baskoro
T
Thanongsak Thepsonthi
N
Nor Hasrul Akhmal Ngadiman
G
Gunawan Setia Prihandana *
DOI:10.3390/membranes16080254delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
This study investigates the synergistic effects of compaction pressure and vapor-induced phase separation (VIPS) on the morphological, mechanical, and initial filtration properties of activated carbon/polyethersulfone composite block membranes. Membranes were fabricated using varying compaction pressures (5 and 10 kg/cm2) and VIPS exposure times (0 and 10 min) prior to direct non-solvent-induced phase separation (NIPS). Surface wettability analysis revealed that the optimized 50 wt.% activated carbon configurations were superhydrophilic (0° water contact angle), exhibiting instantaneous fluid absorption driven by strong capillary forces within the highly hygroscopic matrix. Morphological and gravimetric evaluations demonstrated that minimizing compaction (5 kg/cm2) and bypassing VIPS generated large macrovoids, resulting in the highest bulk internal porosity (61.05%) and maximum continuous gravity-driven water flux. Conversely, incorporating a 10-min VIPS exposure shifted the internal structure toward an interconnected sponge-like network. This structural transformation yielded the highest bovine serum albumin (BSA) rejection rate (12.97%) when paired with low pressure, as the network extended fluid residence time and maximized exposure to the activated carbon adsorption sites. Applying high compaction pressure (10 kg/cm2) to VIPS-treated membranes induced excessive polymer encapsulation of the active particles, significantly reducing separation efficiency while concurrently maximizing initial uniaxial tensile strength. Ultimately, these findings establish a foundational and highly tunable framework, demonstrating that calibrating mechanical compression alongside phase inversion dynamics balances permeability, adsorptive selectivity, and inter-particle binding cohesion for composite block membranes.
Keywords:
composite membrane
activated carbon
polyethersulfone
vapor-induced phase separation
good health

Journal

Membranes cover
Membranes
IF:
3.6
Papers:
4.9K
Citations:
1.6W

Organization

U
universitas gadjah mada
Scholars:
491
Papers: 190
Citations: 0
B
Burapha University
Scholars:
1.1K
Papers: 907
Citations: 698
U
universitas airlangga
Scholars:
537
Papers: 227
Citations: 0
U
Universiti Teknologi Malaysia
Scholars:
1.4W
Papers: 1.1W
Citations: 85
U
universitas indonesia
Scholars:
997
Papers: 357
Citations: 0
Cited Papers

Cited Papers

Citing Papers

Citing Papers