Regeneration‐Optimized Chemisorbents: Evaluating Hybrid Coordination Networks for Atmospheric Water Harvesting

ABSTRACT Atmospheric water harvesting (AWH) can be enabled by solid desiccants that exhibit S‐shaped adsorption isotherms with one or more steps at low relative humidity (RH, <30%) and mild regeneration temperatures (<60°C). There remains a dearth of such regeneration‐optimized sorbents (ROSs), which thus far are limited exclusively to physisorbents mainly because chemisorbents typically require elevated temperatures for water recovery. Herein, the first comprehensive water sorption study of the SIFSIX‐3‐Ni family of hybrid coordination networks (HCNs) and a new, related family of HCNs, reveals a shared cooperative chemisorption mechanism with markedly different RH thresholds and regeneration requirements. Whereas the SIFSIX‐3‐Ni family operates outside the RH and regeneration limits of ROSs, four M′FSIX‐25‐M analogues (M = Co 2+ , Ni 2+ ; M' = Si 4+ , Ti 4+ , 25 = 1,4‐bis(imidazol‐1‐yl)naphthalene) exhibit both low‐RH chemisorption and regeneration from 34‐44°C. The lead regeneration optimized chemisorbent, ROC‐1 ( TIFSIX‐25‐Ni ), has a projected water‐harvesting productivity of ca. 3.5 L sorbent −1 d −1 . Density functional theory calculations provide insight into the energetics and mechanism of hydration/dehydration in these first‐generation ROCs. This work establishes ROCs as a new class of desiccants that offers reversible chemisorption within the low‐RH and mild‐regeneration conditions relevant to AWH in arid environments.

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Journal
Angewandte Chemie International Edition
Published
2026-09-21
DOI
https://doi.org/10.1002/anie.6095254
Primary Topic
Adsorption and Cooling Systems
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article
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Regeneration‐Optimized Chemisorbents: Evaluating Hybrid Coordination Networks for Atmospheric Water Harvesting

Michael John Zaworotko, Tao He, Adam Hogan, Brian Space et al.
Angewandte Chemie International Edition
Adsorption and Cooling Systems
article

Regeneration‐Optimized Chemisorbents: Evaluating Hybrid Coordination Networks for Atmospheric Water Harvesting

Michael John Zaworotko, Tao He, Adam Hogan, Brian Space, Andrey A. Bezrukov, Stefan Kaskel, Carlos J. Solanilla‐Salinas, Soumya Mukherjee, Alan C. Eaby, Volodymyr Bon, Angela Marie Shipman, Xiang‐Jing Kong, William Morris, Lilia Croitor, Xia Li, Asif Raza
article en

Abstract

ABSTRACT Atmospheric water harvesting (AWH) can be enabled by solid desiccants that exhibit S‐shaped adsorption isotherms with one or more steps at low relative humidity (RH, <30%) and mild regeneration temperatures (<60°C). There remains a dearth of such regeneration‐optimized sorbents (ROSs), which thus far are limited exclusively to physisorbents mainly because chemisorbents typically require elevated temperatures for water recovery. Herein, the first comprehensive water sorption study of the SIFSIX‐3‐Ni family of hybrid coordination networks (HCNs) and a new, related family of HCNs, reveals a shared cooperative chemisorption mechanism with markedly different RH thresholds and regeneration requirements. Whereas the SIFSIX‐3‐Ni family operates outside the RH and regeneration limits of ROSs, four M′FSIX‐25‐M analogues (M = Co 2+ , Ni 2+ ; M' = Si 4+ , Ti 4+ , 25 = 1,4‐bis(imidazol‐1‐yl)naphthalene) exhibit both low‐RH chemisorption and regeneration from 34‐44°C. The lead regeneration optimized chemisorbent, ROC‐1 ( TIFSIX‐25‐Ni ), has a projected water‐harvesting productivity of ca. 3.5 L sorbent −1 d −1 . Density functional theory calculations provide insight into the energetics and mechanism of hydration/dehydration in these first‐generation ROCs. This work establishes ROCs as a new class of desiccants that offers reversible chemisorption within the low‐RH and mild‐regeneration conditions relevant to AWH in arid environments.

Angewandte Chemie International Edition
North Carolina State University (US), University of Limerick (IE), Beijing University of Chemical Technology (CN), Technische Universität Dresden (DE)
Clean water and sanitation
Openalex Percentile: Top 20%
Adsorption and Cooling Systems
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