Unlocking Water as Docking Sites in Covalent Organic Frameworks for Enhanced Physisorptive Carbon Capture under Wet Conditions

Abstract The physisorptive CO2 capture process frequently faces the challenge of competing with moisture adsorption. Incorporating strong nucleophiles into porous materials can circumvent this issue by forming bicarbonate in the presence of moisture. However, the moisture-enhanced carbon capture (MECC) in physisorptive systems is still rarely reported. Herein, we present a physisorptive MECC capable of operating at a wide range of relative humidity (RH), employing newly developed covalent organic frameworks (COFs) with Brønsted-acidic squaramide as linkage. Specifically, the squaramide linkage and a specific pore size jointly disrupt hydrogen bonds (HBs) in water molecules, thereby converting them into effective docking sites for CO2 adsorption within the amphiphilic pores. Comprehensive column breakthrough experiments highlight a substantial enhancement in CO2 uptake capacity in the squaramide-linked COFs in the presence of moisture (up to 75% RH) compared to dry conditions. The distinctive adsorption mechanism is further interpreted through in situ diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS), solid-state 1H magic angle spinning nuclear magnetic resonance (ss 1H MAS NMR), dielectric analysis, and sorption simulation, demonstrating that the water around the squaramide linkage could play a crucial role in enhancing CO2 adsorption in the presence of moisture. This work provides new insight into converting water as an additional sorption site and a strategy for addressing the influence of moisture in physisorptive carbon capture processes.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-18
DOI
https://doi.org/10.1021/jacs.6c11850
Primary Topic
Covalent Organic Framework Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Unlocking Water as Docking Sites in Covalent Organic Frameworks for Enhanced Physisorptive Carbon Capture under Wet Conditions

Chunqing Ji, Wei Zhao, Yogesh V. Joshi, Lisa Saunders Baugh et al.
Journal of the American Chemical Society
Covalent Organic Framework Applications
article

Unlocking Water as Docking Sites in Covalent Organic Frameworks for Enhanced Physisorptive Carbon Capture under Wet Conditions

Chunqing Ji, Wei Zhao, Yogesh V. Joshi, Lisa Saunders Baugh, Xiansong Shi, He Li, Dan Zhao, Saifudin Abubakar
article en

Abstract

Abstract The physisorptive CO2 capture process frequently faces the challenge of competing with moisture adsorption. Incorporating strong nucleophiles into porous materials can circumvent this issue by forming bicarbonate in the presence of moisture. However, the moisture-enhanced carbon capture (MECC) in physisorptive systems is still rarely reported. Herein, we present a physisorptive MECC capable of operating at a wide range of relative humidity (RH), employing newly developed covalent organic frameworks (COFs) with Brønsted-acidic squaramide as linkage. Specifically, the squaramide linkage and a specific pore size jointly disrupt hydrogen bonds (HBs) in water molecules, thereby converting them into effective docking sites for CO2 adsorption within the amphiphilic pores. Comprehensive column breakthrough experiments highlight a substantial enhancement in CO2 uptake capacity in the squaramide-linked COFs in the presence of moisture (up to 75% RH) compared to dry conditions. The distinctive adsorption mechanism is further interpreted through in situ diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS), solid-state 1H magic angle spinning nuclear magnetic resonance (ss 1H MAS NMR), dielectric analysis, and sorption simulation, demonstrating that the water around the squaramide linkage could play a crucial role in enhancing CO2 adsorption in the presence of moisture. This work provides new insight into converting water as an additional sorption site and a strategy for addressing the influence of moisture in physisorptive carbon capture processes.

Journal of the American Chemical Society
National University of Singapore (SG), ExxonMobil (Germany) (DE), Suzhou Research Institute (CN), Shanghai Harbour Engineering Design & Research Institute (CN)
Agency for Science, Technology and Research, National University of Singapore, National Research Foundation Singapore, DSO National Laboratories - Singapore, Public Utilities Board - Singapore, Eidgenössische Technische Hochschule Zürich, Science and Technology Support Program of Jiangsu Province
Clean water and sanitation
Openalex Percentile: Top 24%
Covalent Organic Framework Applications
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