ジャーナル論文 Three-Dimensional Analysis of Macrovoids Formed by Nonsolvent-Induced Phase Separation (NIPS) Using X-ray Microcomputed Tomography (Micro-CT)
ORCID SAMURAI ;
Misa Hazutani (author) (この著者で検索)
ORCID ;
Miwa Ohniwa (author) (この著者で検索)
ORCID
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引用
Sadaki Samitsu, Misa Hazutani, Miwa Ohniwa. Three-Dimensional Analysis of Macrovoids Formed by Nonsolvent-Induced Phase Separation (NIPS) Using X-ray Microcomputed Tomography (Micro-CT). ACS Applied Polymer Materials. 2026, 8 (10), 7307-7315. https://doi.org/10.1021/acsapm.6c00505

説明:

(abstract)

Macrovoids formed in asymmetric membranes by non-solvent-induced phase separation (NIPS) critically influence membrane performance; however, it has remained experimentally unclear whether their formation is governed by a single dominant mechanism or by multiple competing mechanisms. Here, we employ high- resolution X-ray microcomputed tomography (micro-CT) to directly visualize and quantitatively analyze macrovoids in three dimensions over a sufficiently large field of view.
Three-dimensional micro-CT observations reveal the coexistence of two distinct types of macrovoids with fundamentally different initiation locations and geometries: surface macrovoids that initiate at or near the membrane surface with sharp initiation tips, and internal (sub-skin) macrovoids that nucleate beneath the skin layer with rounded initiation geometries. Quantitative analysis of depth-dependent structural parameters demonstrates that the number density, size distribution, and spatial arrangement of these macrovoid types strongly depend on fabrication conditions, such as polymer concentration and dope-solution composition, and that competitive growth between surface and internal macrovoids governs their final morphologies.
These three-dimensional structural characteristics cannot be resolved by conventional two-dimensional characterization techniques. The present results provide direct experimental evidence that multiple, process-condition-dependent physical mechanisms govern macrovoid formation during NIPS, and establish X-ray micro-CT as a powerful experimental approach for elucidating phase-separation phenomena and guiding the rational design of asymmetric membranes.

権利情報:

キーワード: nonsolvent-induced phase separation (NIPS), macrovoid, X-ray microcomputed tomography (micro-CT), three-dimensional structural characterization, membrane formation mechanism

刊行年月日: 2026-05-22

出版者: American Chemical Society (ACS)

掲載誌:

  • ACS Applied Polymer Materials (ISSN: 26376105) vol. 8 issue. 10 p. 7307-7315

研究助成金:

  • Ministry of Education, Culture, Sports, Science and Technology JPMXP1122714694
  • Core Research for Evolutional Science and Technology JPMJCR23L2

原稿種別: 著者最終稿 (Accepted manuscript)

MDR DOI: https://doi.org/10.48505/nims.6430

公開URL: https://doi.org/10.1021/acsapm.6c00505

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更新時刻: 2026-07-30 08:24:15 +0900

MDRでの公開時刻: 2026-07-30 10:31:02 +0900

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