REFERENCES

1. Yang Y, Li L, Lin RB, et al. Ethylene/ethane separation in a stable hydrogen-bonded organic framework through a gating mechanism. Nat Chem 2021;13:933-9.

2. Jiang Y, Hu Y, Luan B, et al. Benchmark single-step ethylene purification from ternary mixtures by a customized fluorinated anion-embedded MOF. Nat Commun 2023;14:401.

3. Fan W, Ying Y, Peh SB, et al. Multivariate polycrystalline metal–organic framework membranes for CO2/CH4 separation. J Am Chem Soc 2021;143:17716-23.

4. Zhang Z, Deng Z, Evans HA, et al. Exclusive recognition of CO2 from hydrocarbons by aluminum formate with hydrogen-confined pore cavities. J Am Chem Soc 2023;145:11643-9.

5. Ryckebosch E, Drouillon M, Vervaeren H. Techniques for transformation of biogas to biomethane. Biomass Bioenerg 2011;35:1633-45.

6. Li L, Lin RB, Krishna R, et al. Ethane/ethylene separation in a metal–organic framework with iron-peroxo sites. Science 2018;362:443-6.

7. Liu Y, Chen Z, Liu G, et al. Conformation-controlled molecular sieving effects for membrane-based propylene/propane separation. Adv Mater 2019;31:e1807513.

8. Zhang Y, Xiao H, Zhou X, Wang X, Li Z. Selective adsorption performances of UiO-67 for separation of light hydrocarbons C1, C2, and C3. Ind Eng Chem Res 2017;56:8689-96.

9. Han XH, Gong K, Huang X, et al. Syntheses of covalent organic frameworks via a one-pot suzuki coupling and schiff’s base reaction for C2H4/C3H6 separation. Angew Chem Int Ed Engl 2022;61:e202202912.

10. Tian P, Wei Y, Ye M, Liu Z. Methanol to olefins (MTO): from fundamentals to commercialization. ACS Catal 2015;5:1922-38.

11. Chen Y, Yang Y, Wang Y, et al. Ultramicroporous hydrogen-bonded organic framework material with a thermoregulatory gating effect for record propylene separation. J Am Chem Soc 2022;144:17033-40.

12. Chen KJ, Madden DG, Mukherjee S, et al. Synergistic sorbent separation for one-step ethylene purification from a four-component mixture. Science 2019;366:241-6.

13. Liu Y, Liu J, Xiong H, et al. Negative electrostatic potentials in a Hofmann-type metal–organic framework for efficient acetylene separation. Nat Commun 2022;13:5515.

14. Peng YL, Wang T, Jin C, et al. Efficient propyne/propadiene separation by microporous crystalline physiadsorbents. Nat Commun 2021;12:5768.

15. Wei W, Guo X, Zhang Z, Zhang Y, Xue D. Topology-guided synthesis and construction of amide-functionalized rare-earth metal–organic frameworks. Inorg Chem Commun 2021;133:108896.

16. Fang H, Zheng B, Zhang ZH, Li HX, Xue DX, Bai J. Ligand-conformer-induced formation of zirconium-organic framework for methane storage and MTO product separation. Angew Chem Int Ed Engl 2021;60:16521-8.

17. Gao S, Morris CG, Lu Z, et al. Selective hysteretic sorption of light hydrocarbons in a flexible metal–organic framework material. Chem Mater 2016;28:2331-40.

18. Hiraide S, Sakanaka Y, Kajiro H, Kawaguchi S, Miyahara MT, Tanaka H. High-throughput gas separation by flexible metal–organic frameworks with fast gating and thermal management capabilities. Nat Commun 2020;11:3867.

19. Fan W, Zhang X, Kang Z, Liu X, Sun D. Isoreticular chemistry within metal–organic frameworks for gas storage and separation. Coord Chem Rev 2021;443:213968.

20. Li J, Bhatt PM, Li J, Eddaoudi M, Liu Y. Recent progress on microfine design of metal–organic frameworks: structure regulation and gas sorption and separation. Adv Mater 2020;32:e2002563.

21. Hu P, Hu J, Liu H, et al. Quasi-orthogonal configuration of propylene within a scalable metal–organic framework enables its purification from quinary propane dehydrogenation byproducts. ACS Cent Sci 2022;8:1159-68.

22. Zeng H, Xie M, Wang T, et al. Orthogonal-array dynamic molecular sieving of propylene/propane mixtures. Nature 2021;595:542-8.

23. Long JR, Yaghi OM. The pervasive chemistry of metal–organic frameworks. Chem Soc Rev 2009;38:1213-4.

24. Zhou HC, Long JR, Yaghi OM. Introduction to metal–organic frameworks. Chem Rev 2012;112:673-4.

25. Zheng F, Chen R, Ding Z, et al. Interlayer symmetry control in flexible-robust layered metal–organic frameworks for highly efficient C2H2/CO2 separation. J Am Chem Soc 2023;145:19903-11.

26. Gulati S, Vijayan S, Mansi, et al. Recent advances in the application of metal–organic frameworks (MOFs)-based nanocatalysts for direct conversion of carbon dioxide (CO2) to value-added chemicals. Coord Chem Rev 2023;474:214853.

27. Li L, Jung HS, Lee JW, Kang YT. Review on applications of metal–organic frameworks for CO2 capture and the performance enhancement mechanisms. Renew Sust Energy Rev 2022;162:112441.

28. Yang S, Hu T. Reverse-selective metal–organic framework materials for the efficient separation and purification of light hydrocarbons. Coord Chem Rev 2022;468:214628.

29. Xie Y, Shi Y, Cedeño Morales EM, et al. Optimal binding affinity for sieving separation of propylene from propane in an oxyfluoride anion-based metal–organic framework. J Am Chem Soc 2023;145:2386-94.

30. Deneff JI, Rohwer LES, Butler KS, et al. Orthogonal luminescence lifetime encoding by intermetallic energy transfer in heterometallic rare-earth MOFs. Nat Commun 2023;14:981.

31. Liu Q, Wu B, Li M, Huang Y, Li L. Heterostructures made of upconversion nanoparticles and metal–organic frameworks for biomedical applications. Adv Sci 2022;9:e2103911.

32. Hashjin M, Zarshad S, Motejadded Emrooz HB, Sadeghzadeh S. Enhanced atmospheric water harvesting efficiency through green-synthesized MOF-801: a comparative study with solvothermal synthesis. Sci Rep 2023;13:16983.

33. Shi L, Li N, Wang D, Fan M, Zhang S, Gong Z. Environmental pollution analysis based on the luminescent metal organic frameworks: a review. TrAC Trend Anal Chem 2021;134:116131.

34. Lin JY. CHEMISTRY. Molecular sieves for gas separation. Science 2016;353:121-2.

35. Datta SJ, Mayoral A, Murthy Srivatsa Bettahalli N, et al. Rational design of mixed-matrix metal–organic framework membranes for molecular separations. Science 2022;376:1080-7.

36. Wang G, Krishna R, Li Y, et al. Rational construction of ultrahigh thermal stable MOF for efficient separation of MTO products and natural gas. ACS Mater Lett 2023;5:1091-9.

37. Dong Q, Huang Y, Hyeon-deuk K, et al. Shape- and size-dependent kinetic ethylene sieving from a ternary mixture by a trap-and-flow channel crystal. Adv Funct Mater 2022;32:2203745.

38. Yaghi OM. Reticular chemistry-construction, properties, and precision reactions of frameworks. J Am Chem Soc 2016;138:15507-9.

39. Ke T, Wang Q, Shen J, et al. Molecular sieving of C2-C3 alkene from alkyne with tuned threshold pressure in robust layered metal–organic frameworks. Angew Chem Int Ed Engl 2020;59:12725-30.

40. Eddaoudi M, Kim J, Rosi N, et al. Systematic design of pore size and functionality in isoreticular MOFs and their application in methane storage. Science 2002;295:469-72.

41. Pei J, Wang J, Shao K, et al. Engineering microporous ethane-trapping metal–organic frameworks for boosting ethane/ethylene separation. J Mater Chem A 2020;8:3613-20.

42. Meng SS, Xu M, Guan H, et al. Anisotropic flexibility and rigidification in a TPE-based Zr-MOFs with scu topology. Nat Commun 2023;14:5347.

43. Lyu H, Chen OI, Hanikel N, et al. Carbon dioxide capture chemistry of amino acid functionalized metal–organic frameworks in humid flue gas. J Am Chem Soc 2022;144:2387-96.

44. Zulys A, Yulia F, Muhadzib N, Nasruddin. Biological metal–organic frameworks (Bio-MOFs) for CO2 capture. Ind Eng Chem Res 2021;60:37-51.

45. Binaeian E, Nabipour H, Ahmadi S, Rohani S. The green synthesis and applications of biological metal–organic frameworks for targeted drug delivery and tumor treatments. J Mater Chem B 2023;11:11426-59.

46. Si Y, Luo H, Zhang P, et al. CD-MOFs: from preparation to drug delivery and therapeutic application. Carbohydr Polym 2024;323:121424.

47. Wang L, Lv J, Ye Q, Luo Y, Wang G, Xie L. Nanoporous Cu(II)-adenine-based metal–organic frameworks for selective adsorption of C2H2 from C2H4 and CO2. ACS Appl Nano Mater 2023;6:22095-103.

48. Li T, Chen D, Sullivan JE, Kozlowski MT, Johnson JK, Rosi NL. Systematic modulation and enhancement of CO2:N2 selectivity and water stability in an isoreticular series of bio-MOF-11 analogues. Chem Sci 2013;4:1746-55.

49. Pérez-Yáñez S, Beobide G, Castillo O, et al. Open-framework copper adeninate compounds with three-dimensional microchannels tailored by aliphatic monocarboxylic acids. Inorg Chem 2011;50:5330-2.

50. Pérez-yáñez S, Beobide G, Castillo O, et al. Gas adsorption properties and selectivity in CuII/adeninato/carboxylato metal–biomolecule frameworks. Eur J Inorg Chem 2012;2012:5921-33.

51. Li H, Bonduris H, Zhang X, et al. A microporous metal–organic framework with basic sites for efficient C2H2/CO2 separation. J Solid State Chem 2020;284:121209.

52. Song C, Zheng F, Liu Y, et al. Spatial distribution of nitrogen binding sites in metal–organic frameworks for selective ethane adsorption and one-step ethylene purification. Angew Chem Int Ed Engl 2023;62:e202313855.

53. Chen OIF, Liu CH, Wang K, et al. Water-enhanced direct air capture of carbon dioxide in metal–organic frameworks. J Am Chem Soc 2024;146:2835-44.

54. Liu X, Kirlikovali KO, Chen Z, et al. Small molecules, big effects: tuning adsorption and catalytic properties of metal–organic frameworks. Chem Mater 2021;33:1444-54.

55. Xie Y, Shi Y, Cui H, Lin R, Chen B. Efficient separation of propylene from propane in an ultramicroporous cyanide-based compound with open metal sites. Small Struct 2022;3:2100125.

56. Yang SQ, Sun FZ, Krishna R, et al. Propane-trapping ultramicroporous metal–organic framework in the low-pressure area toward the purification of propylene. ACS Appl Mater Interfaces 2021;13:35990-6.

57. Peng Y, Wang T, Jin C, et al. A robust heterometallic ultramicroporous MOF with ultrahigh selectivity for propyne/propylene separation. J Mater Chem A 2021;9:2850-6.

58. Gao J, Cai Y, Qian X, et al. A microporous hydrogen-bonded organic framework for the efficient capture and purification of propylene. Angew Chem Int Ed Engl 2021;60:20400-6.

59. Zhou J, Ke T, Steinke F, et al. Tunable confined aliphatic pore environment in robust metal–organic frameworks for efficient separation of gases with a similar structure. J Am Chem Soc 2022;144:14322-9.

60. Shi R, Lv D, Chen Y, et al. Highly selective adsorption separation of light hydrocarbons with a porphyrinic zirconium metal–organic framework PCN-224. Sep Purif Technol 2018;207:262-8.

61. Huang Y, Lin Z, Fu H, et al. Porous anionic indium-organic framework with enhanced gas and vapor adsorption and separation ability. ChemSusChem 2014;7:2647-53.

62. Zhang Y, Yang L, Wang L, Duttwyler S, Xing H. A microporous metal–organic framework supramolecularly assembled from a CuII dodecaborate cluster complex for selective gas separation. Angew Chem Int Ed Engl 2019;58:8145-50.

63. Zhang Y, Yang L, Wang L, Cui X, Xing H. Pillar iodination in functional boron cage hybrid supramolecular frameworks for high performance separation of light hydrocarbons. J Mater Chem A 2019;7:27560-6.

64. Li YZ, Wang GD, Krishna R, et al. A separation MOF with O/N active sites in nonpolar pore for one-step C2H4 purification from C2H6 or C3H6 mixtures. Chem Eng J 2023;466:143056.

65. Xiao Y, Hong AN, Chen Y, et al. Developing water-stable pore-partitioned metal–organic frameworks with multi-level symmetry for high-performance sorption applications. Small 2023;19:2205119.

66. Liu X, Hao C, Li J, et al. An anionic metal–organic framework: metathesis of zinc(II) with copper(II) for efficient C3/C2 hydrocarbon and organic dye separation. Inorg Chem Front 2018;5:2898-905.

67. Zhang L, Ma L, Wang G, Hou L, Zhu Z, Wang Y. A new honeycomb MOF for C2H4 purification and C3H6 enrichment by separating methanol to olefin products. J Mater Chem A 2023;11:2343-8.

Chemical Synthesis
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