Developing and Validating a High-Throughput Robotic System for the Accelerated Development of Porous Membranes

Fuente: arXiv
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Main Authors: Wang, Hongchen, Danalou, Sima Zeinali, Zhu, Jiahao, Sulimro, Kenneth, Lim, Chaewon, Basak, Smita, Tai, Aimee, Siriwardana, Usan, Hattrick-Simpers, Jason, Werber, Jay
Format: Preprint
Published: 2025
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author Wang, Hongchen
Danalou, Sima Zeinali
Zhu, Jiahao
Sulimro, Kenneth
Lim, Chaewon
Basak, Smita
Tai, Aimee
Siriwardana, Usan
Hattrick-Simpers, Jason
Werber, Jay
author_facet Wang, Hongchen
Danalou, Sima Zeinali
Zhu, Jiahao
Sulimro, Kenneth
Lim, Chaewon
Basak, Smita
Tai, Aimee
Siriwardana, Usan
Hattrick-Simpers, Jason
Werber, Jay
contents The development of porous polymeric membranes remains a labor-intensive process, often requiring extensive trial and error to identify optimal fabrication parameters. In this study, we present a fully automated platform for membrane fabrication and characterization via nonsolvent-induced phase separation (NIPS). The system integrates automated solution preparation, blade casting, controlled immersion, and compression testing, allowing precise control over fabrication parameters such as polymer concentration and ambient humidity. The modular design allows parallel processing and reproducible handling of samples, reducing experimental time and increasing consistency. Compression testing is introduced as a sensitive mechanical characterization method for estimating membrane stiffness and as a proxy to infer porosity and intra-sample uniformity through automated analysis of stress-strain curves. As a proof of concept to demonstrate the effectiveness of the system, NIPS was carried out with polysulfone, the green solvent PolarClean, and water as the polymer, solvent, and nonsolvent, respectively. Experiments conducted with the automated system reproduced expected effects of polymer concentration and ambient humidity on membrane properties, namely increased stiffness and uniformity with increasing polymer concentration and humidity variations in pore morphology and mechanical response. The developed automated platform supports high-throughput experimentation and is well-suited for integration into self-driving laboratory workflows, offering a scalable and reproducible foundation for data-driven optimization of porous polymeric membranes through NIPS.
format Preprint
id arxiv_https___arxiv_org_abs_2508_10973
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Developing and Validating a High-Throughput Robotic System for the Accelerated Development of Porous Membranes
Wang, Hongchen
Danalou, Sima Zeinali
Zhu, Jiahao
Sulimro, Kenneth
Lim, Chaewon
Basak, Smita
Tai, Aimee
Siriwardana, Usan
Hattrick-Simpers, Jason
Werber, Jay
Robotics
Materials Science
The development of porous polymeric membranes remains a labor-intensive process, often requiring extensive trial and error to identify optimal fabrication parameters. In this study, we present a fully automated platform for membrane fabrication and characterization via nonsolvent-induced phase separation (NIPS). The system integrates automated solution preparation, blade casting, controlled immersion, and compression testing, allowing precise control over fabrication parameters such as polymer concentration and ambient humidity. The modular design allows parallel processing and reproducible handling of samples, reducing experimental time and increasing consistency. Compression testing is introduced as a sensitive mechanical characterization method for estimating membrane stiffness and as a proxy to infer porosity and intra-sample uniformity through automated analysis of stress-strain curves. As a proof of concept to demonstrate the effectiveness of the system, NIPS was carried out with polysulfone, the green solvent PolarClean, and water as the polymer, solvent, and nonsolvent, respectively. Experiments conducted with the automated system reproduced expected effects of polymer concentration and ambient humidity on membrane properties, namely increased stiffness and uniformity with increasing polymer concentration and humidity variations in pore morphology and mechanical response. The developed automated platform supports high-throughput experimentation and is well-suited for integration into self-driving laboratory workflows, offering a scalable and reproducible foundation for data-driven optimization of porous polymeric membranes through NIPS.
title Developing and Validating a High-Throughput Robotic System for the Accelerated Development of Porous Membranes
topic Robotics
Materials Science
url https://arxiv.org/abs/2508.10973