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April 3, 2026Small2 citations

Modulator‐Tuned Cu(II) Metal–Organic Frameworks for Cooperative Sulfur Dioxide Capture

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YSYilu SunYLYinhui LiWZW. W. Zhang

Key Points

  • The research aims to develop new metal-organic frameworks (MOFs) for effective sulfur dioxide capture in complex environments.
  • Constructed isostructural metal-organic frameworks using a pyrazine tetracarboxylate linker and copper ions.
  • Incorporated formic and benzoic acid modulators to optimize adsorption performance.
  • Evaluated SO2 uptake capacity and retention at elevated temperatures through mechanistic studies.
  • The formate-modulated variant (Cu-L-FA) achieves an SO2 adsorption capacity of 4.5 mmol·g−1 at 298 K and 1 bar.
  • At 313 K, Cu-L-FA retains 97% of its adsorption capacity, outperforming conventional adsorbents.
  • The study reveals that adsorption is driven by reversible coordination to Cu(II) and interactions with pyrazine nitrogen.

Abstract

ABSTRACT Sulfur dioxide (SO 2 ), a typical industrial byproduct and hazardous pollutant, requires efficient capture for environmental protection and resource recovery. However, existing adsorbents face challenges such as unsatisfactory selectivity and performance degradation at elevated temperatures in complex flue gas environments. This study presents the judicious construction of isostructural metal‐organic frameworks (MOFs) (Cu‐L, Cu‐L‐FA, Cu‐L‐BA) using a pyrazine tetracarboxylate linker and copper ions, with formic/benzoic acid modulators retained to fine‐tune adsorption performance. The resulting MOFs exhibit a rare 4,4‐connected mfj topology. These isostructural Cu‐L variants demonstrate substantial SO 2 uptake capacity and performance retention at relatively high temperatures. Notably, the formate‐modulated variant (Cu‐L‐FA) achieves an SO 2 adsorption capacity of 4.5 mmol·g −1 at 298 K and 1 bar, and retains 97% of its capacity at 313 K, significantly outperforming conventional physisorbents. Mechanistic studies reveal that the adsorption process is governed by reversible coordination to Cu(II) sites and multifaceted interactions with basic pyrazine nitrogen atoms. The incorporation of modulators not only optimizes the trade‐off between adsorption and regeneration energy but also triggers SO 2 ‐induced dynamic modulator‐node interactions, leading to instant high SO 2 uptake at low pressures and enhanced cooperative adsorption. This work provides a novel strategy for designing SO 2 adsorbents with salient performance for flue gas desulfurization.

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Cite This Study

Sun et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e995a333a821460d0f0https://doi.org/10.1002/smll.202514056
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