High-Capacity, Cooperative
CO2 Capture
in a Diamine-Appended Metal–Organic Framework through a Combined
Chemisorptive and Physisorptive Mechanism
Posted on 2024-02-24 - 16:12
Diamine-appended Mg2(dobpdc) (dobpdc4– = 4,4′-dioxidobiphenyl-3,3′-dicarboxylate) metal–organic
frameworks are promising candidates for carbon capture that exhibit
exceptional selectivities and high capacities for CO2.
To date, CO2 uptake in these materials has been shown to
occur predominantly via a chemisorption mechanism involving CO2 insertion at the amine-appended metal sites, a mechanism
that limits the capacity of the material to ∼1 equiv of CO2 per diamine. Herein, we report a new framework, pip2–Mg2(dobpdc) (pip2 = 1-(2-aminoethyl)piperidine), that exhibits
two-step CO2 uptake and achieves an unusually high CO2 capacity approaching 1.5 CO2 per diamine at saturation.
Analysis of variable-pressure CO2 uptake in the material
using solid-state nuclear magnetic resonance (NMR) spectroscopy and in situ diffuse reflectance infrared Fourier transform spectroscopy
(DRIFTS) reveals that pip2–Mg2(dobpdc) captures
CO2 via an unprecedented mechanism involving the initial
insertion of CO2 to form ammonium carbamate chains at half
of the sites in the material, followed by tandem cooperative chemisorption
and physisorption. Powder X-ray diffraction analysis, supported by
van der Waals-corrected density functional theory, reveals that physisorbed
CO2 occupies a pocket formed by adjacent ammonium carbamate
chains and the linker. Based on breakthrough and extended cycling
experiments, pip2–Mg2(dobpdc) exhibits exceptional
performance for CO2 capture under conditions relevant to
the separation of CO2 from landfill gas. More broadly,
these results highlight new opportunities for the fundamental design
of diamine–Mg2(dobpdc) materials with even higher
capacities than those predicted based on CO2 chemisorption
alone.
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Zhu, Ziting; Tsai, Hsinhan; Parker, Surya T.; Lee, Jung-Hoon; Yabuuchi, Yuto; Jiang, Henry Z. H.; et al. (2024). High-Capacity, Cooperative
CO2 Capture
in a Diamine-Appended Metal–Organic Framework through a Combined
Chemisorptive and Physisorptive Mechanism. ACS Publications. Collection. https://doi.org/10.1021/jacs.3c13381