Chen Oscar Iu-Fan, Liu Cheng-Hsin, Wang Kaiyu, Borrego-Marin Emilio, Li Haozhe, Alawadhi Ali H, Navarro Jorge A R, Yaghi Omar M
Department of Chemistry and Kavli Energy Nano Sciences Institute, University of California, Berkeley, California 94720, United States.
Bakar Institute of Digital Materials for the Planet, College of Computing, Data Science, and Society, University of California, Berkeley, California 94720, United States.
J Am Chem Soc. 2024 Jan 31;146(4):2835-2844. doi: 10.1021/jacs.3c14125. Epub 2024 Jan 18.
We have developed two series of amine-functionalized zirconium (Zr) metal-organic framework-808 (MOF-808), which were produced by postsynthetic modifications to have either amino acids coordinated to Zr ions (MOF-808-AAs) or polyamines covalently bound to the chloro-functionalized structure (MOF-808-PAs). These MOF variants were comprehensively characterized by liquid-state H nuclear magnetic resonance (NMR) measurements and potentiometric acid-base titration to determine the amounts of amines, energy-dispersive X-ray spectroscopy to assess the extent of covalent substitution by polyamines, powder X-ray diffraction analysis to verify the maintenance of the MOF crystallinity and structure after postsynthetic modifications, nitrogen sorption isotherm measurements to confirm retention of the porosity, and water sorption isotherm measurements to find the water uptake in the pores of each member of the series. Evaluation and testing of these compounds in direct air capture (DAC) of CO showed improved CO capture performance for the functionalized forms, especially under humid conditions: In dry conditions, the l-lysine- and tris(3-aminopropyl)amine-functionalized variants, termed as MOF-808-Lys and MOF-808-TAPA, exhibited the highest CO uptakes at 400 ppm, measuring 0.612 and 0.498 mmol g, and further capacity enhancement was achieved by introducing 50% relative humidity, resulting in remarkable uptakes of 1.205 and 0.872 mmol g corresponding to 97 and 75% increase compared to the dry uptakes, respectively. The mechanism underlying the enhanced uptake efficiency was revealed by C solid-state NMR and temperature-programmed desorption measurements, indicating the formation of bicarbonate species, and therefore a stoichiometry of 1:1 CO to each amine site.
我们开发了两个系列的胺功能化锆(Zr)金属有机框架-808(MOF-808),它们是通过后合成修饰制备的,其中氨基酸与Zr离子配位(MOF-808-AAs)或多胺共价结合到氯功能化结构上(MOF-808-PAs)。通过液态氢核磁共振(NMR)测量、电位酸碱滴定来全面表征这些MOF变体,以确定胺的含量;通过能量色散X射线光谱来评估多胺的共价取代程度;通过粉末X射线衍射分析来验证后合成修饰后MOF结晶度和结构的维持情况;通过氮吸附等温线测量来确认孔隙率的保留情况;通过水吸附等温线测量来确定该系列每个成员孔中的水吸收情况。在直接空气捕获(DAC)中对这些化合物进行的CO评估和测试表明,功能化形式的CO捕获性能有所提高,尤其是在潮湿条件下:在干燥条件下,称为MOF-808-Lys和MOF-808-TAPA的L-赖氨酸和三(3-氨基丙基)胺功能化变体在400 ppm时表现出最高的CO吸收量,分别为0.612和0.498 mmol/g,引入50%的相对湿度后进一步提高了容量,分别达到1.205和0.872 mmol/g的显著吸收量,与干燥吸收量相比分别增加了97%和75%。通过C固态NMR和程序升温脱附测量揭示了吸收效率提高的机制,表明形成了碳酸氢盐物种,因此每个胺位点的CO化学计量比为1:1。