Design of Electrified Fiber Sorbents for Direct Air Capture with Electrically‐Driven Temperature Vacuum Swing Adsorption

Y Young Hun Lee (Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology Daejeon 34141 South Korea) J Jung Hun Lee (Department of Chemical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA) H Hwajoo Joo (Department of Chemical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA) M Michael Massen‐Hane (Department of Chemical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA) I Injun Park (Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology Daejeon 34141 South Korea) S Soohyeon Rho (Material and Component Convergence R&D Department Korea Institute of Industrial Technology (KITECH) Ansan 15588 South Korea) A Aqil Jamal (Research and Development Center, Saudi Aramco, Dhahran, Saudi Arabia.) T T. Alan Hatton (Department of Chemical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA) D Dong‐Yeun Koh (Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology Daejeon 34141 South Korea)

Abstract

Abstract Joule heating is becoming accepted as a highly efficient regeneration technique for temperature vacuum swing adsorption in direct air capture (DAC). This acknowledgment arises from its ability to rapidly generate and transfer heat, along with the convenience of obtaining electrical power from renewable sources. This study presents a unique electrified fiber sorbent (i.e., e‐fiber) design that facilitates Joule heating, enabling energy‐efficient electrically‐driven temperature‐vacuum swing adsorption (e‐TVSA) for DAC. The e‐fiber sorbent is produced via a dip coating technique, in which a silver composite solution is applied to the surface of an open‐porous polymer matrix. The resulting ultra‐thin, interconnected porous conductive layer on the fiber surface not only minimizes the increase in diffusion resistance even after the surface coating process but also offers exceptionally low electrical resistance (0.5 Ω cm −1 ). The e‐fiber sorbent module achieves a desorption temperature of 110 °C in 80 s at 3 V. Notably, only a 5% reduction in capacity is recorded following repeated cycles of e‐TVSA at a CO 2 concentration of 400 ppm. The complicated nature of heat transfer processes is clarified caused by Joule heating in the e‐fiber sorbent module through detailed case studies conducted with computational simulations, offering insights for design optimization and system engineering.

Article Details

Volume / Issue Vol. 37, Issue 45
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

Y

Young Hun Lee

Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology Daejeon 34141 South Korea

J

Jung Hun Lee

Department of Chemical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA

H

Hwajoo Joo

Department of Chemical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA

M

Michael Massen‐Hane

Department of Chemical Engineering Massachusetts Institute of Technology Cambridge MA 02139 USA

I

Injun Park

Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology Daejeon 34141 South Korea

S

Soohyeon Rho

Material and Component Convergence R&D Department Korea Institute of Industrial Technology (KITECH) Ansan 15588 South Korea

A

Aqil Jamal

Research and Development Center, Saudi Aramco, Dhahran, Saudi Arabia.

T

T. Alan Hatton

Department of Chemical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge MA 02139 USA

D

Dong‐Yeun Koh

Department of Chemical and Biomolecular Engineering Korea Advanced Institute of Science and Technology Daejeon 34141 South Korea