References
1. Zhou H-C, Long JR, Yaghi OM (2012) Introduction to metal–organic frameworks. Chem Rev
112(2):673–674
2. Moulton B, Zaworotko MJ (2001) From molecules to crystal engineering: supramolecular
isomerism and polymorphism in network solids. Chem Rev 101(6):1629–1658
3. Eddaoudi M, Moler DB, Li H, Chen B, Reineke TM, O’Keeffe M, Yaghi OM (2001) Modular
chemistry: secondary building units as a basis for the design of highly porous and robust
metalÀorganic carboxylate frameworks. Acc Chem Res 34(4):319–330
4. Li J-R, Sculley J, Zhou H-C (2012) Metal–organic frameworks for separations. Chem Rev 112
(2):869–932
5. Horcajada P, Gref R, Baati T, Allan PK, Maurin G, Couvreur P, Férey G, Morris RE, Serre C
(2012) Metal–organic frameworks in biomedicine. Chem Rev 112(2):1232–1268
6. Paillaud J-L, Harbuzaru B, Patarin J, Bats N (2004) Extra-large-pore zeolites with
two-dimensional channels formed by 14 and 12 rings. Science 304(5673):990
7. Cook TR, Zheng Y-R, Stang PJ (2013) Metal–organic frameworks and self-assembled supramolecular coordination complexes: comparing and contrasting the design, synthesis, and
functionality of metal–organic materials. Chem Rev 113(1):734–777
8. Cheetham AK, Férey G, Loiseau T (1999) Open-framework inorganic materials. Angew Chem
Int Ed 38(22):3268–3292
9. Brant JA, Liu Y, Sava DF, Beauchamp D, Eddaoudi M (2006) Single-metal-ion-based molecular building blocks (MBBs) approach to the design and synthesis of metal–organic assemblies.
J Mol Struct 796(1):160–164
10. Corma A (1997) From microporous to mesoporous molecular sieve materials and their use in
catalysis. Chem Rev 97(6):2373–2420
11. Davis ME (2002) Ordered porous materials for emerging applications. Nature 417:813–821
12. Corma A, Davis ME (2004) Issues in the synthesis of crystalline molecular sieves: towards the
crystallization of low framework-density structures. ChemPhysChem 5(3):304–313
13. Song L, Wang Y-J, Chai W-X (2019) A diamond-type metal-organic framework based on nanosized [Cu8(μ4–I)6(PPh3)4]2+ clusters and cyanide-ion linkers: design, structure and luminescent property. Inorg Chem Commun 104:190–196
14. Mitzi DB (2019) Introduction: perovskites. Chem Rev 119(5):3033–3035
15. Saparov B, Mitzi DB (2016) Organic–inorganic perovskites: structural versatility for functional
materials design. Chem Rev 116(7):4558–4596
16. Bourikas K, Kordulis C, Lycourghiotis A (2014) Titanium dioxide (anatase and rutile): surface
chemistry, liquid–solid interface chemistry, and scientific synthesis of supported catalysts.
Chem Rev 114(19):9754–9823
17. Huskić I, Pekov IV, Krivovichev SV, Friščić T (2016) Minerals with metal-organic framework
structures. Sci Adv 2(8):e1600621
18. Li B, Wen H-M, Zhou W, Chen B (2014) Porous metal–organic frameworks for gas storage and
separation: what, how, and why? J Phys Chem Lett 5(20):3468–3479
19. Ma S, Zhou H-C (2010) Gas storage in porous metal–organic frameworks for clean energy
applications. Chem Commun 46(1):44–53
20. Goldsmith J, Wong-Foy AG, Cafarella MJ, Siegel DJ (2013) Theoretical limits of hydrogen
storage in metal–organic frameworks: opportunities and trade-offs. Chem Mater 25
(16):3373–3382
21. Zhang Z, Zhao Y, Gong Q, Li Z, Li J (2013) MOFs for CO2 capture and separation from flue
gas mixtures: the effect of multifunctional sites on their adsorption capacity and selectivity.
Chem Commun 49(7):653–661
22. Britt D, Tranchemontagne D, Yaghi OM (2008) Metal-organic frameworks with high capacity
and selectivity for harmful gases. Proc Natl Acad Sci 105(33):11623
Guest-Based Photoactive Porous Materials Based upon Zn-Carboxylate Metal. . .
181
1. Zhou H-C, Long JR, Yaghi OM (2012) Introduction to metal–organic frameworks. Chem Rev
112(2):673–674
2. Moulton B, Zaworotko MJ (2001) From molecules to crystal engineering: supramolecular
isomerism and polymorphism in network solids. Chem Rev 101(6):1629–1658
3. Eddaoudi M, Moler DB, Li H, Chen B, Reineke TM, O’Keeffe M, Yaghi OM (2001) Modular
chemistry: secondary building units as a basis for the design of highly porous and robust
metalÀorganic carboxylate frameworks. Acc Chem Res 34(4):319–330
4. Li J-R, Sculley J, Zhou H-C (2012) Metal–organic frameworks for separations. Chem Rev 112
(2):869–932
5. Horcajada P, Gref R, Baati T, Allan PK, Maurin G, Couvreur P, Férey G, Morris RE, Serre C
(2012) Metal–organic frameworks in biomedicine. Chem Rev 112(2):1232–1268
6. Paillaud J-L, Harbuzaru B, Patarin J, Bats N (2004) Extra-large-pore zeolites with
two-dimensional channels formed by 14 and 12 rings. Science 304(5673):990
7. Cook TR, Zheng Y-R, Stang PJ (2013) Metal–organic frameworks and self-assembled supramolecular coordination complexes: comparing and contrasting the design, synthesis, and
functionality of metal–organic materials. Chem Rev 113(1):734–777
8. Cheetham AK, Férey G, Loiseau T (1999) Open-framework inorganic materials. Angew Chem
Int Ed 38(22):3268–3292
9. Brant JA, Liu Y, Sava DF, Beauchamp D, Eddaoudi M (2006) Single-metal-ion-based molecular building blocks (MBBs) approach to the design and synthesis of metal–organic assemblies.
J Mol Struct 796(1):160–164
10. Corma A (1997) From microporous to mesoporous molecular sieve materials and their use in
catalysis. Chem Rev 97(6):2373–2420
11. Davis ME (2002) Ordered porous materials for emerging applications. Nature 417:813–821
12. Corma A, Davis ME (2004) Issues in the synthesis of crystalline molecular sieves: towards the
crystallization of low framework-density structures. ChemPhysChem 5(3):304–313
13. Song L, Wang Y-J, Chai W-X (2019) A diamond-type metal-organic framework based on nanosized [Cu8(μ4–I)6(PPh3)4]2+ clusters and cyanide-ion linkers: design, structure and luminescent property. Inorg Chem Commun 104:190–196
14. Mitzi DB (2019) Introduction: perovskites. Chem Rev 119(5):3033–3035
15. Saparov B, Mitzi DB (2016) Organic–inorganic perovskites: structural versatility for functional
materials design. Chem Rev 116(7):4558–4596
16. Bourikas K, Kordulis C, Lycourghiotis A (2014) Titanium dioxide (anatase and rutile): surface
chemistry, liquid–solid interface chemistry, and scientific synthesis of supported catalysts.
Chem Rev 114(19):9754–9823
17. Huskić I, Pekov IV, Krivovichev SV, Friščić T (2016) Minerals with metal-organic framework
structures. Sci Adv 2(8):e1600621
18. Li B, Wen H-M, Zhou W, Chen B (2014) Porous metal–organic frameworks for gas storage and
separation: what, how, and why? J Phys Chem Lett 5(20):3468–3479
19. Ma S, Zhou H-C (2010) Gas storage in porous metal–organic frameworks for clean energy
applications. Chem Commun 46(1):44–53
20. Goldsmith J, Wong-Foy AG, Cafarella MJ, Siegel DJ (2013) Theoretical limits of hydrogen
storage in metal–organic frameworks: opportunities and trade-offs. Chem Mater 25
(16):3373–3382
21. Zhang Z, Zhao Y, Gong Q, Li Z, Li J (2013) MOFs for CO2 capture and separation from flue
gas mixtures: the effect of multifunctional sites on their adsorption capacity and selectivity.
Chem Commun 49(7):653–661
22. Britt D, Tranchemontagne D, Yaghi OM (2008) Metal-organic frameworks with high capacity
and selectivity for harmful gases. Proc Natl Acad Sci 105(33):11623
Guest-Based Photoactive Porous Materials Based upon Zn-Carboxylate Metal. . .
181
