Efficient continuous SF<sub>6</sub>/N<sub>2</sub> separation using low-cost and robust metal-organic frameworks composites.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 39805842.
- Also identified by DOI 10.1038/s41467-025-56031-5 and PMC identifier 11729912.
- Licence recorded as CC BY-NC-ND.
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Abstract
Physisorption presents a promising alternative to cryogenic distillation for capturing the most potent greenhouse gas, SF<sub>6</sub>, but existing adsorbents face challenges in meeting diverse chemical and engineering concerns. Herein, with insights into in-pore chemistry and industrial process design, we report a systematic investigation that constructed two low-cost composites pellets (Al(fum)@2%HPC and Al(fum)@5%Kaolin) coupled with an innovative two-stage Vacuum Temperature Swing Adsorption (VTSA) process for the ultra-efficient recovery of low-concentration SF<sub>6</sub> from N<sub>2</sub>. Record-high selectivities (> 2×10<sup>4</sup>) and SF<sub>6</sub> dynamic capacities (~ 2.7 mmol/g) were achieved, while exceptional SF<sub>6</sub> productivities (~ 58.7 L/kg), yields (~ 96.8%), and recyclability (~ 1000 cycles) were demonstrated in fixed-bed adsorption-desorption experiments under mild regeneration conditions. 2D solid-state NMR/in-situ FTIR, DFT-D binding/diffusion simulation analyses revealed the multi-site binding mode and the ultra-fast diffusion of SF<sub>6</sub> within the channels. The proposed VTSA processes successfully met the dual stringent requirements of both environmental protection and electricity equipment operation: the SF<sub>6</sub> recovery of 99.91% accompanied with a SF<sub>6</sub> purity/working capacity of 99.91%/2.1 mmol/g, which significantly outperformed the industrial employed adsorbent zeolite 13X and showed only 18.7% the energy consumption of the cryogenic distillation.