TY - JOUR
T1 - Acid site regulation of the acetic acid-modified cu-MOFs
T2 - cooperative roles of defect sites and terminal hydroxyl groups in NH3 adsorption
AU - Huo, Zichen
AU - Chen, Ruichen
AU - Jiang, Xun
AU - He, Linjie
AU - Xu, Xiyan
AU - Shi, Daxin
AU - Zhang, Yaoyuan
AU - Chen, Kangcheng
AU - Huang, Zhiqi
AU - Liu, Changhao
AU - Wu, Qin
AU - Li, Hansheng
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/9/28
Y1 - 2026/9/28
N2 - The release or leakage of NH3 causes environmental pollution and poses risks to human health, underscoring the need for high-performance NH3 adsorbents. In this study, acetic acid was used as a modulator to tailor the defect structures of Cu-MOFs, and operando infrared spectroscopy together with density functional theory (DFT) calculations was employed to systematically examine the effects of acetic acid dosage and ligand type on morphology, defect formation, thermal stability, and NH3 adsorption performance. The structure–property relationships, cycling stability, and adsorption mechanism were clarified. Increasing the acetic acid dosage was found to promote the formation of Cu2+ defects, thereby enhancing NH3 uptake, and CuBTC constructed from H3BTC exhibited markedly higher adsorption capacity than CuBDC based on H2BDC. Both operando IR and DFT results confirmed that the optimally modified CuBTC-Ac-64 contained abundant μ-OH groups enabling strong hydrogen-bond-mediated physisorption, while Cu2+ defects generated Lewis-acidic sites that strengthened chemisorption. These advantages arose from the larger surface area, smaller pore size, and high density of μ-OH and Lewis-acid sites introduced by acetic acid modification. CuBTC-Ac-64 achieved an NH3 uptake of 16.81±0.13 mmol/g, a 16% improvement over unmodified CuBTC, and retained more than 90% of its initial capacity after five cycles. This work provides important theoretical and practical guidance for the development of efficient Cu-MOF-based NH3 adsorbents.
AB - The release or leakage of NH3 causes environmental pollution and poses risks to human health, underscoring the need for high-performance NH3 adsorbents. In this study, acetic acid was used as a modulator to tailor the defect structures of Cu-MOFs, and operando infrared spectroscopy together with density functional theory (DFT) calculations was employed to systematically examine the effects of acetic acid dosage and ligand type on morphology, defect formation, thermal stability, and NH3 adsorption performance. The structure–property relationships, cycling stability, and adsorption mechanism were clarified. Increasing the acetic acid dosage was found to promote the formation of Cu2+ defects, thereby enhancing NH3 uptake, and CuBTC constructed from H3BTC exhibited markedly higher adsorption capacity than CuBDC based on H2BDC. Both operando IR and DFT results confirmed that the optimally modified CuBTC-Ac-64 contained abundant μ-OH groups enabling strong hydrogen-bond-mediated physisorption, while Cu2+ defects generated Lewis-acidic sites that strengthened chemisorption. These advantages arose from the larger surface area, smaller pore size, and high density of μ-OH and Lewis-acid sites introduced by acetic acid modification. CuBTC-Ac-64 achieved an NH3 uptake of 16.81±0.13 mmol/g, a 16% improvement over unmodified CuBTC, and retained more than 90% of its initial capacity after five cycles. This work provides important theoretical and practical guidance for the development of efficient Cu-MOF-based NH3 adsorbents.
KW - Acetic acid modification
KW - Ammonia absorption mechanisms
KW - Defect
KW - Hydroxyl groups
KW - Metal organic frameworks
UR - https://www.scopus.com/pages/publications/105041465831
U2 - 10.1016/j.seppur.2026.138830
DO - 10.1016/j.seppur.2026.138830
M3 - Article
AN - SCOPUS:105041465831
SN - 1383-5866
VL - 404
JO - Separation and Purification Technology
JF - Separation and Purification Technology
M1 - 138830
ER -