[1] Z. Lai, G. Bonilla, I. Diaz, J.G. Nery, K. Sujaoti, M.A. Amat, E. Kokkoli, O. Terasaki, R.W. Thompson, M. Tsapatsis, D.G. Vlachos, Microstructural optimization of a zeolite membrane for organic vapor separation, Science 300 (5618) (2003) 456-460. [2] Y. Liu, Z. Ng, E.A. Khan, H.-K. Jeong, C.-b. Ching, Z. Lai, Synthesis of continuous MOF-5 membranes on porous alpha-alumina substrates, Microporous Mesoporous Mater. 118 (1-3) (2009) 296-301. [3] Y.S. Li, H. Bux, A. Feldhoff, G.L. Li, W.S. Yang, J. Caro, Controllable synthesis of metal-organic frameworks: From MOF nanorods to oriented MOF membranes, Adv. Mater. 22 (30) (2010) 3322-3326. [4] D. Zacher, O. Shekhah, C. Woll, R.A. Fischer, Thin films of metal-organic frameworks, Chem. Soc. Rev. 38 (5) (2009) 1418-1429. [5] M. Tian, F. Pei, M.S. Yao, Z.H. Fu, L.L. Lin, G.D. Wu, G. Xu, H. Kitagawa, X.L. Fang, Ultrathin MOF nanosheet assembled highly oriented microporous membrane as an interlayer for lithium-sulfur batteries, Energy Storage Mater. 21 (2019) 14-21. [6] C. Zhang, B.H. Wu, M.Q. Ma, Z.K. Wang, Z.K. Xu, Ultrathin metal/covalent-organic framework membranes towards ultimate separation, Chem. Soc. Rev. 48 (14) (2019) 3811-3841. [7] R. Makiura, S. Motoyama, Y. Umemura, H. Yamanaka, O. Sakata, H. Kitagawa, Surface nano-architecture of a metal-organic framework, Nat. Mater. 9 (2010) 565-571. [8] D. Zacher, R. Schmid, C. Woll, R.A. Fischer, Surface chemistry of metal-organic frameworks at the liquid-solid interface, Angew. Chem. Int. Ed Engl. 50 (1) (2011) 176-199. [9] Y. Yoo, Z.P. Lai, H.K. Jeong, Fabrication of MOF-5 membranes using microwave-induced rapid seeding and solvothermal secondary growth, Microporous Mesoporous Mater. 123 (1-3) (2009) 100-106. [10] Y.W. Sun, Y. Liu, J. Caro, X.W. Guo, C.S. Song, Y. Liu, In-plane epitaxial growth of highly c-oriented NH2-MIL-125(Ti) membranes with superior H2/CO2 selectivity, Angew. Chem. Int. Ed Engl. 57 (49) (2018) 16088-16093. [11] S.X. Chen, Y.W. Sun, S.K. Chen, Y.L. Gao, F. Wang, H. Li, Y. Liu, Facile fabrication of a highly (110)-oriented ZIF-7 film with rod-shaped seeds, Chem. Commun. 57 (17) (2021) 2128-2131. [12] M. Linares-Moreau, L.A. Brandner, M.J. Velasquez-Hernandez, J. Fonseca, Y. Benseghir, J.M. Chin, D. Maspoch, C. Doonan, P. Falcaro, Fabrication of oriented polycrystalline MOF superstructures, Adv. Mater. 36 (1) (2024) e2309645. [13] F. Cheng, A.J. Young, J.G. Bouillard, N.T. Kemp, R. Guillet-Nicolas, C.H. Hall, D. Roberts, A.H. Jaafar, A.M. Adawi, F. Kleitz, A. Imhof, M.R. Reithofer, J.M. Chin, Dynamic electric field alignment of metal-organic framework microrods, J. Am. Chem. Soc. 141 (33) (2019) 12989-12993. [14] K. Allahyarli, M.R. Reithofer, F. Cheng, A.J. Young, E. Kiss, T.T.Y. Tan, A. Prado-Roller, J.M. Chin, Metal-Organic Framework superstructures with long-ranged orientational order via E-field assisted liquid crystal assembly, J. Colloid Interface Sci. 610 (2022) 1027-1034. [15] P. Falcaro, K. Okada, T. Hara, K. Ikigaki, Y. Tokudome, A.W. Thornton, A.J. Hill, T. Williams, C. Doonan, M. Takahashi, Centimetre-scale micropore alignment in oriented polycrystalline metal-organic framework films via heteroepitaxial growth, Nat. Mater. 16 (3) (2017) 342-348. [16] C. Avci, I. Imaz, A. Carne-Sanchez, J.A. Pariente, N. Tasios, J. Perez-Carvajal, M.I. Alonso, A. Blanco, M. Dijkstra, C. Lopez, D. Maspoch, Self-assembly of polyhedral metal-organic framework particles into three-dimensional ordered superstructures, Nat. Chem. 10 (1) (2017) 78-84. [17] Y.W. Sun, C.S. Song, X.W. Guo, Y. Liu, Concurrent manipulation of out-of-plane and regional In-plane orientations of NH2-UiO-66 membranes with significantly reduced anisotropic grain boundary and superior H2/CO2 separation performance, ACS Appl. Mater. Interfaces 12 (4) (2020) 4494-4500. [18] T. Loiseau, L. Lecroq, C. Volkringer, J. Marrot, G. Ferey, M. Haouas, F. Taulelle, S. Bourrelly, P.L. Llewellyn, M. Latroche, MIL-96, a porous aluminum trimesate 3D structure constructed from a hexagonal network of 18-membered rings and mu3-oxo-centered trinuclear units, J. Am. Chem. Soc. 128 (31) (2006) 10223-10230. [19] A. Knebel, S. Friebe, N.C. Bigall, M. Benzaqui, C. Serre, J. Caro, Comparative study of MIL-96(Al) as continuous metal-organic frameworks layer and mixed-matrix membrane, ACS Appl. Mater. Interfaces 8 (11) (2016) 7536-7544. [20] S.X. Chen, Y. Liu, Y.W. Sun, G.L. Xu, T.T. Ji, X.F. Zhang, F. Wang, Y. Liu, Fabrication of MIL-96 nanosheets and relevant c-oriented ultrathin membrane through solvent optimization, J. Membr. Sci. 643 (2022) 120064. [21] J.H. Li, M.J. Hurlock, V.G. Goncharov, X.Y. Li, X.F. Guo, Q. Zhang, Solvent-free and phase-selective synthesis of aluminum trimesate metal-organic frameworks, Inorg. Chem. 60 (7) (2021) 4623-4632. [22] L. Wen, J. Su, X.J. Wu, P. Cai, W. Luo, G.Z. Cheng, Ruthenium supported on MIL-96: An efficient catalyst for hydrolytic dehydrogenation of ammonia borane for chemical hydrogen storage, Int. J. Hydrog. Energy 39 (30) (2014) 17129-17135. [23] M. Benzaqui, R.S. Pillai, A. Sabetghadam, V. Benoit, P. Normand, J. Marrot, N. Menguy, D. Montero, W. Shepard, A. Tissot, C. Martineau-Corcos, C. Sicard, M. Mihaylov, F. Carn, I. Beurroies, P.L. Llewellyn, G. De Weireld, K. Hadjiivanov, J. Gascon, F. Kapteijn, G. Maurin, N. Steunou, C. Serre, Revisiting the aluminum trimesate-based MOF (MIL-96): From structure determination to the processing of mixed matrix membranes for CO2 capture, Chem. Mater. 29 (24) (2017) 10326-10338. [24] V. Benoit, N. Chanut, R.S. Pillai, M. Benzaqui, I. Beurroies, S. Devautour-Vinot, C. Serre, N. Steunou, G. Maurin, P.L. Llewellyn, A promising metal-organic framework (MOF), MIL-96(Al), for CO2 separation under humid conditions, J. Mater. Chem. A 6 (5) (2018) 2081-2090. [25] M.A. Andres, M.T. Vijjapu, S.G. Surya, O. Shekhah, K.N. Salama, C. Serre, M. Eddaoudi, O. Roubeau, I. Gascon, Methanol and humidity capacitive sensors based on thin films of MOF nanoparticles, ACS Appl. Mater. Interfaces 12 (3) (2020) 4155-4162. [26] D.D. Liu, Y.Q. Liu, F.N. Dai, J.C. Zhao, K. Yang, C.G. Liu, Size- and morphology-controllable synthesis of MIL-96 (Al) by hydrolysis and coordination modulation of dual aluminium source and ligand systems, Dalton Trans. 44 (37) (2015) 16421-16429. [27] B. Seoane, A. Dikhtiarenko, A. Mayoral, C. Tellez, J. Coronas, F. Kapteijn, J. Gascon, Metal organic framework synthesis in the presence of surfactants: Towards hierarchical MOFs? CrystEngComm 17 (7) (2015) 1693-1700. [28] C.N. Gu, J.J. Li, G. Yang, L.M. Zhang, C.S. Liu, H. Pang, Morphology and size controlled synthesis of Co-doped MIL-96 by different alkaline modulators for sensitively detecting alpha-fetoprotein, Chin. Chem. Lett. 31 (9) (2020) 2263-2267. [29] L.H. Mohd Azmi, D.R. Williams, B.P. Ladewig, Polymer-assisted modification of metal-organic framework MIL-96 (Al): Influence of HPAM concentration on particle size, crystal morphology and removal of harmful environmental pollutant PFOA, Chemosphere 262 (2021) 128072. [30] M.C. McCarthy, V. Varela-Guerrero, G.V. Barnett, H.K. Jeong, Synthesis of zeolitic imidazolate framework films and membranes with controlled microstructures, Langmuir 26 (18) (2010) 14636-14641. [31] G.F. Harrington, J. Santiso, Back-to-Basics tutorial: X-ray diffraction of thin films, J. Electroceram. 47 (4) (2021) 141-163. |