TY - JOUR
T1 - Rehydroxylation-Enhanced Amine Loading in SBA-15 for Direct Air Capture of CO2
AU - Huang, Weimin
AU - Wang, Haocheng
AU - Yu, Jiayang
AU - Yuan, Hao
AU - Li, Ke Xin
AU - Chen, Yi
AU - Chen, Shanshan
AU - Hu, Hanjun
AU - Yang, Ralph T.
AU - Hu, Zhun
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/7/15
Y1 - 2026/7/15
N2 - Maximizing amine loading remains a central challenge in improving the performance of amine-grafted adsorbents for the direct air capture (DAC) of CO2. Herein, we report a series of NH2-X-SBA-15-AT adsorbents (X = Al, Ce, Ti, Zr, Fe, and Cr) prepared via a rehydroxylation strategy that combines heteroatom doping with an acid treatment. Before amine grafting, the acid-treated supports showed negligible breakthrough times (less than 2 min); after amine functionalization, the breakthrough times increased dramatically for all NH2-X-SBA-15-AT samples. Among the samples, NH2–Al-SBA-15-AT exhibited a breakthrough time exceeding 200 min and a dynamic CO2 capacity of 0.67 mmol/g, corresponding to a more than 3-fold increase over conventionally grafted NH2–SBA-15. Rehydroxylation increased the surface hydroxyl density, thereby providing more anchoring sites for amine grafting and increasing the density of the effective CO2 adsorption sites. In situ DRIFTS indicated the formation of ammonium carbamate species during CO2 adsorption and suggested that surface hydroxyls may participate in hydrogen bonding interactions with adsorbed amine-derived species. These interactions may help stabilize carbamate-containing intermediates and, thus, contribute to the observed differences in regeneration behavior among the adsorbents. These results demonstrate that rehydroxylation is an effective route to improve amine utilization on mesoporous silica and provide useful guidance for designing DAC adsorbents with an enhanced capacity and tunable regeneration characteristics.
AB - Maximizing amine loading remains a central challenge in improving the performance of amine-grafted adsorbents for the direct air capture (DAC) of CO2. Herein, we report a series of NH2-X-SBA-15-AT adsorbents (X = Al, Ce, Ti, Zr, Fe, and Cr) prepared via a rehydroxylation strategy that combines heteroatom doping with an acid treatment. Before amine grafting, the acid-treated supports showed negligible breakthrough times (less than 2 min); after amine functionalization, the breakthrough times increased dramatically for all NH2-X-SBA-15-AT samples. Among the samples, NH2–Al-SBA-15-AT exhibited a breakthrough time exceeding 200 min and a dynamic CO2 capacity of 0.67 mmol/g, corresponding to a more than 3-fold increase over conventionally grafted NH2–SBA-15. Rehydroxylation increased the surface hydroxyl density, thereby providing more anchoring sites for amine grafting and increasing the density of the effective CO2 adsorption sites. In situ DRIFTS indicated the formation of ammonium carbamate species during CO2 adsorption and suggested that surface hydroxyls may participate in hydrogen bonding interactions with adsorbed amine-derived species. These interactions may help stabilize carbamate-containing intermediates and, thus, contribute to the observed differences in regeneration behavior among the adsorbents. These results demonstrate that rehydroxylation is an effective route to improve amine utilization on mesoporous silica and provide useful guidance for designing DAC adsorbents with an enhanced capacity and tunable regeneration characteristics.
UR - https://www.scopus.com/pages/publications/105045106525
U2 - 10.1021/acs.iecr.6c01767
DO - 10.1021/acs.iecr.6c01767
M3 - 文章
AN - SCOPUS:105045106525
SN - 0888-5885
VL - 65
SP - 14596
EP - 14606
JO - Industrial and Engineering Chemistry Research
JF - Industrial and Engineering Chemistry Research
IS - 27
ER -