Chemistry:UiO MOFs

The UiO (University of Oslo) series frameworks are a group of metal-organic frameworks (MOFs) that were first discovered in 2008[1] with the general formula Zr6O4(OH)4(L)6, where L is an organic ligand. UiO series MOFs contain zirconium oxo clusters that adopt an octahedral geometry with zirconium present in each of its vertices. In pristine UiO MOFs, each cluster binds to twelve organic ligands, but these MOFs are also stable with missing organic linkers, or defect sites.[2] Non-modified UiO MOFs have a Fm3m space group.[1][3] The zirconium oxo clusters with the bridging μ3-OH, has D3d symmetry.[1] UiO MOFs have seen great interest in materials science for various applications including gas storage,[4] radionuclide adsorption,[5] catalysis,[6] and sensing.[7]
The series is made up of 4 members that differ in the number of phenyl rings in their organic linkers. The organic linkers are terepthalic acid, biphenyl-4,4′-dicarboxylic acid, terphenyl-4,4''-dicarboxylic acid, and quaterphenyl-4,4'-dicarboxylic acid for UiO-66, UiO-67, Ui-68, and UiO-69, respectively. UiO MOFs have seen significant research interest because of their high thermal stability (450-500°C), chemical stability, tunable pore size, and high accessible surface area.[8] The high thermal and chemical stability of this class is due to, in part, the high oxophilicity of the zirconium making the Zr-O bond robust and the hardness of both the ligand's carboxylate group and the zirconium(IV) in the nodes.[8] The decomposition observed around 500°C is caused by the break down of the phenyl groups of the organic ligands.[9] The stability of the class is inversely proportional to the length of the organic ligand, so the UiO-69 structure is the least structurally robust.[8] Defective sites in the MOFs tend to decrease the thermal and chemical stability of the structure, but allow for post-synthetic addition of new functional organic ligands.
Synthesis

UiO MOFs are commonly produced via solvothermal methods, which are able to produce bulk crystalline powders. Solvothermal reactions of UiO MOFs are often done in dimethylformamide (DMF) and require elevated temperatures. When heated, DMF can break down to form dimethylamine and formic acid, which can act as a modulator in the synthesis. Modulators compete with the binding of the typical organic ligands and slow the growth of crystals, which improves the crystallinity and size of MOF particles.[10]
Single crystals of UiO MOFs have been grown and analyzed by single-crystal X-ray diffraction (SCXRD) using the modulator growth method. Modulators act to slow down the growth and reduce the seeding of crystals, which allows for small single crystals to nucleate. SCXRD has allowed for detailed understanding of the structure of these MOFs and their defect sites. Where carboxylate ligands are typically located, defective sites are stabilized by hydroxide ions or solvent molecules like DMF or water.[3]
A variety of other methods have been explored for the synthesis of UiO MOFs, including microwave, electrochemical, and ultrasonic methods.[11]
UiO analogs
Isoreticular structures of UiO MOFs have been made with other tetravalent metals including hafnium,[12] cerium,[13] thorium,[14] and plutonium.[15] A variety of other structures have been produced that use organic ligands that have been modified before the synthesis of the structure. One commonly used example is NH2-UiO-66, which uses aminoterephthalic acid as the organic ligand, which can be modified post-synthetically to further functionalize the material.[16]
References
- ↑ 1.0 1.1 1.2 Cavka, Jasmina Hafizovic; Jakobsen, Søren; Olsbye, Unni; Guillou, Nathalie; Lamberti, Carlo; Bordiga, Silvia; Lillerud, Karl Petter (2008-10-22). "A New Zirconium Inorganic Building Brick Forming Metal Organic Frameworks with Exceptional Stability" (in en). Journal of the American Chemical Society 130 (42): 13850–13851. doi:10.1021/ja8057953. ISSN 0002-7863. https://pubs.acs.org/doi/10.1021/ja8057953.
- ↑ Kaur, Gurpreet; Øien-Ødegaard, Sigurd; Lazzarini, Andrea; Chavan, Sachin Maruti; Bordiga, Silvia; Lillerud, Karl Petter; Olsbye, Unni (2019-08-07). "Controlling the Synthesis of Metal–Organic Framework UiO-67 by Tuning Its Kinetic Driving Force" (in en). Crystal Growth & Design 19 (8): 4246–4251. doi:10.1021/acs.cgd.9b00916. ISSN 1528-7483. https://pubs.acs.org/doi/10.1021/acs.cgd.9b00916.
- ↑ 3.0 3.1 Øien, Sigurd; Wragg, David; Reinsch, Helge; Svelle, Stian; Bordiga, Silvia; Lamberti, Carlo; Lillerud, Karl Petter (2014-11-05). "Detailed Structure Analysis of Atomic Positions and Defects in Zirconium Metal–Organic Frameworks" (in en). Crystal Growth & Design 14 (11): 5370–5372. doi:10.1021/cg501386j. ISSN 1528-7483. https://pubs.acs.org/doi/10.1021/cg501386j.
- ↑ Murugavel, Ruthradharshini; Rownaghi, Ali A.; Rezaei, Fateme (2025). "Improving hydrogen storage performance of UiO-67 and MOF-177 under temperature-pressure swing conditions via densification" (in en). International Journal of Hydrogen Energy 127: 362–373. doi:10.1016/j.ijhydene.2025.01.325. https://linkinghub.elsevier.com/retrieve/pii/S0360319925003623.
- ↑ Park, Kyoung Chul; Lim, Jaewoong; Thaggard, Grace C.; Maldeni Kankanamalage, Buddhima K. P.; Lehman-Andino, Ingrid; Liu, Yuan; Burrell, Jennii M.; Martin, Corey R. et al. (2025). "Stimuli-responsive photoswitch–actinide binding: a match made in MOFs" (in en). Chemical Science 16 (31): 14115–14126. doi:10.1039/D5SC03171K. ISSN 2041-6520. PMID 40656527. PMC 12242833. https://xlink.rsc.org/?DOI=D5SC03171K.
- ↑ Pulumati, Sri Harsha; Sannes, Dag Kristian; Jabbour, Christia R.; Mandemaker, Laurens D. B.; Weckhuysen, Bert M.; Olsbye, Unni; Nova, Ainara; Skúlason, Egill (2024-01-05). "Mechanistic Insights in the Catalytic Hydrogenation of CO 2 over Pt Nanoparticles in UiO-67 Metal–Organic Frameworks" (in en). ACS Catalysis 14 (1): 382–394. doi:10.1021/acscatal.3c03401. ISSN 2155-5435. https://pubs.acs.org/doi/10.1021/acscatal.3c03401.
- ↑ He, Zhijian; Hu, Jieying; Zhong, Jing; Long, Yunchen; Shen, Junda; Chen, Song; Ou, Weihui; Liu, Qiyu et al. (2025). "Plasmonic MOF for Highly Selective SERS Sensing of Trace Mercury (II) in Complex Matrices" (in en). Small 21 (10). doi:10.1002/smll.202409988. ISSN 1613-6810. https://onlinelibrary.wiley.com/doi/10.1002/smll.202409988.
- ↑ 8.0 8.1 8.2 Zhou, Ji; Gu, Shuangxi; Xiang, Yuqin; Xiong, Yun; Liu, Genyan (2025). "UiO-67: A versatile metal-organic framework for diverse applications" (in en). Coordination Chemistry Reviews 526. doi:10.1016/j.ccr.2024.216354. https://linkinghub.elsevier.com/retrieve/pii/S0010854524007008.
- ↑ Valenzano, Loredana; Civalleri, Bartolomeo; Chavan, Sachin; Bordiga, Silvia; Nilsen, Merete H.; Jakobsen, Søren; Lillerud, Karl Petter; Lamberti, Carlo (2011-04-12). "Disclosing the Complex Structure of UiO-66 Metal Organic Framework: A Synergic Combination of Experiment and Theory" (in en). Chemistry of Materials 23 (7): 1700–1718. doi:10.1021/cm1022882. ISSN 0897-4756. https://pubs.acs.org/doi/10.1021/cm1022882.
- ↑ Zhou, Ji; Gu, Shuangxi; Xiang, Yuqin; Xiong, Yun; Liu, Genyan (2025). "UiO-67: A versatile metal-organic framework for diverse applications" (in en). Coordination Chemistry Reviews 526. doi:10.1016/j.ccr.2024.216354. https://linkinghub.elsevier.com/retrieve/pii/S0010854524007008.
- ↑ Ru, Jing; Wang, Xuemei; Wang, Fangbing; Cui, Xinglan; Du, Xinzhen; Lu, Xiaoquan (2021). "UiO series of metal-organic frameworks composites as advanced sorbents for the removal of heavy metal ions: Synthesis, applications and adsorption mechanism" (in en). Ecotoxicology and Environmental Safety 208. doi:10.1016/j.ecoenv.2020.111577. https://linkinghub.elsevier.com/retrieve/pii/S0147651320314147.
- ↑ Jakobsen, Søren; Gianolio, Diego; Wragg, David S.; Nilsen, Merete Hellner; Emerich, Hermann; Bordiga, Silvia; Lamberti, Carlo; Olsbye, Unni et al. (2012-09-19). "Structural determination of a highly stable metal-organic framework with possible application to interim radioactive waste scavenging: Hf-UiO-66" (in en). Physical Review B 86 (12). doi:10.1103/PhysRevB.86.125429. ISSN 1098-0121. https://link.aps.org/doi/10.1103/PhysRevB.86.125429.
- ↑ Campanelli, Matteo; Del Giacco, Tiziana; De Angelis, Filippo; Mosconi, Edoardo; Taddei, Marco; Marmottini, Fabio; D'Amato, Roberto; Costantino, Ferdinando (2019-12-04). "Solvent-Free Synthetic Route for Cerium(IV) Metal–Organic Frameworks with UiO-66 Architecture and Their Photocatalytic Applications" (in en). ACS Applied Materials & Interfaces 11 (48): 45031–45037. doi:10.1021/acsami.9b13730. ISSN 1944-8244. https://pubs.acs.org/doi/10.1021/acsami.9b13730.
- ↑ Li, Zi‐Jian; Ju, Yu; Lu, Huangjie; Wu, Xiaoling; Yu, Xinle; Li, Yongxin; Wu, Xiaowei; Zhang, Zhi‐Hui et al. (2021-01-18). "Boosting the Iodine Adsorption and Radioresistance of Th‐UiO‐66 MOFs via Aromatic Substitution" (in en). Chemistry – A European Journal 27 (4): 1286–1291. doi:10.1002/chem.202003621. ISSN 0947-6539. https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/chem.202003621.
- ↑ Hastings, Ashley M.; Ray, Debmalya; Jeong, WooSeok; Gagliardi, Laura; Farha, Omar K.; Hixon, Amy E. (2020-05-20). "Advancement of Actinide Metal–Organic Framework Chemistry via Synthesis of Pu-UiO-66" (in en). Journal of the American Chemical Society 142 (20): 9363–9371. doi:10.1021/jacs.0c01895. ISSN 0002-7863. https://pubs.acs.org/doi/10.1021/jacs.0c01895.
- ↑ Molavi, Hossein; Eskandari, Alireza; Shojaei, Akbar; Mousavi, Seyyed Abbas (2018). "Enhancing CO2/N2 adsorption selectivity via post-synthetic modification of NH2-UiO-66(Zr)" (in en). Microporous and Mesoporous Materials 257: 193–201. doi:10.1016/j.micromeso.2017.08.043. https://linkinghub.elsevier.com/retrieve/pii/S1387181117305796.
