From Fiber Bundles to Architected Membranes: Triply Periodic Minimal Surface Architectures for Biohybrid Artificial Lungs

M Michael Pflaum K Kai P. Barbian (Department of Cardiovascular Engineering Institute of Applied Medical Engineering Medical Faculty RWTH Aachen University Aachen Germany) F Florian Neuhaus (AVT.CVT ‐ Chair of Chemical Process Engineering RWTH Aachen University Aachen Germany) G Gerrit Sitarz (Department of Cardiothoracic, Transplantation, and Vascular Surgery Hannover Medical School Hannover Germany) C Carolin Nölke (Department of Cardiothoracic, Transplantation, and Vascular Surgery Hannover Medical School Hannover Germany) S Sebastian V. Jansen (Department of Cardiovascular Engineering Institute of Applied Medical Engineering Medical Faculty RWTH Aachen University Aachen Germany) J John Linkhorst (Process Engineering of Electrochemical Systems Technical University Darmstadt Darmstadt Germany) L Lukas T. Hirschwald (AVT.CVT ‐ Chair of Chemical Process Engineering RWTH Aachen University Aachen Germany) S Sebastian Brosch (AVT.CVT ‐ Chair of Chemical Process Engineering RWTH Aachen University Aachen Germany) C Christian Certa (AVT.CVT ‐ Chair of Chemical Process Engineering RWTH Aachen University Aachen Germany) U Ulrich Steinseifer M Matthias Wessling (DWI‐Leibniz Institute for Interactive Materials Aachen Germany) J Jutta Arens (Member of the DFG Priority Program SPP2014: Towards an Implantable Lung Aachen Germany) A Arjang Ruhparwar (Division for Cardiothoracic-, Transplantation- and Vascular Surgery, Hannover Medical School, Hannover, Germany (A.R.).) B Bettina Wiegmann (Department of Cardiothoracic, Transplantation and Vascular Surgery, Hannover Medical School)

Abstract

ABSTRACT Artificial lung systems rely almost exclusively on hollow fiber membrane (HFM) bundles, where gas exchange is constrained by heterogeneous flow distribution and thrombogenic blood–material interfaces. Here, we introduce an architecture‐driven design framework for artificial lungs based on additively manufactured triply periodic minimal surface (TPMS) membranes. In contrast to discrete fiber bundles, TPMS membranes form continuous three‐dimensional architectures that simultaneously regulate perfusion pathways, diffusion interfaces, and blood–material interactions. Computational fluid dynamics and multiphysics transport simulations reveal that membrane architecture governs gas exchange through coupled effects of membrane thickness, unit cell size, and three‐dimensional flow topology. Optimized TPMS architectures achieved on average up to ∼88% higher oxygen transfer rates across the investigated flow regime compared to conventional HFM while enabling substantially more homogeneous flow fields and reduced stagnation zones. Experimental screening identifies polydimethylsiloxane‐based printable elastomers compatible with thin gas‐permeable membranes and endothelial functionalization. The biohybrid endothelial interface mitigates thrombogenic interactions, while maintaining gas transport. Computed tomography–derived implant geometries demonstrate the feasibility of translating architected membrane systems into anatomically integrated artificial lungs. Together, these results establish a new design paradigm for artificial lungs, in which membrane architecture becomes the primary determinant of gas transport, flow distribution, and hemocompatibility.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 03, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (15)

M

Michael Pflaum

K

Kai P. Barbian

Department of Cardiovascular Engineering Institute of Applied Medical Engineering Medical Faculty RWTH Aachen University Aachen Germany

F

Florian Neuhaus

AVT.CVT ‐ Chair of Chemical Process Engineering RWTH Aachen University Aachen Germany

G

Gerrit Sitarz

Department of Cardiothoracic, Transplantation, and Vascular Surgery Hannover Medical School Hannover Germany

C

Carolin Nölke

Department of Cardiothoracic, Transplantation, and Vascular Surgery Hannover Medical School Hannover Germany

S

Sebastian V. Jansen

Department of Cardiovascular Engineering Institute of Applied Medical Engineering Medical Faculty RWTH Aachen University Aachen Germany

J

John Linkhorst

Process Engineering of Electrochemical Systems Technical University Darmstadt Darmstadt Germany

L

Lukas T. Hirschwald

AVT.CVT ‐ Chair of Chemical Process Engineering RWTH Aachen University Aachen Germany

S

Sebastian Brosch

AVT.CVT ‐ Chair of Chemical Process Engineering RWTH Aachen University Aachen Germany

C

Christian Certa

AVT.CVT ‐ Chair of Chemical Process Engineering RWTH Aachen University Aachen Germany

U

Ulrich Steinseifer

M

Matthias Wessling

DWI‐Leibniz Institute for Interactive Materials Aachen Germany

J

Jutta Arens

Member of the DFG Priority Program SPP2014: Towards an Implantable Lung Aachen Germany

A

Arjang Ruhparwar

Division for Cardiothoracic-, Transplantation- and Vascular Surgery, Hannover Medical School, Hannover, Germany (A.R.).

B

Bettina Wiegmann

Department of Cardiothoracic, Transplantation and Vascular Surgery, Hannover Medical School