43. Furukawa H, Go YB, Ko N, Park YK, Uribe-Romo FJ, Kim J, O’Keeffe M, Yaghi OM (2011)
Isoreticular expansion of metal–organic frameworks with triangular and square building units
and the lowest calculated density for porous crystals. Inorg Chem 50(18):9147–9152
44. Yaghi OM, O’Keeffe M, Ockwig NW, Chae HK, Eddaoudi M, Kim J (2003) Reticular
synthesis and the design of new materials. Nature 423(6941):705–714
45. Bourne SA, Lu J, Mondal A, Moulton B, Zaworotko MJ (2001) Self-assembly of nanometerscale secondary building units into an undulating two-dimensional network with two types of
hydrophobic cavity. Angew Chem Int Ed 40(11):2111–2113
46. Farha OK, Wilmer CE, Eryazici I, Hauser BG, Parilla PA, O’Neill K, Sarjeant AA, Nguyen ST,
Snurr RQ, Hupp JT (2012) Designing higher surface area metal–organic frameworks: are triple
bonds better than phenyls? J Am Chem Soc 134(24):9860–9863
47. Ma S, Sun D, Simmons JM, Collier CD, Yuan D, Zhou H-C (2008) Metal-organic framework
from an anthracene derivative containing nanoscopic cages exhibiting high methane uptake. J
Am Chem Soc 130(3):1012–1016
48. Yan Y, Blake AJ, Lewis W, Barnett SA, Dailly A, Champness NR, Schröder M (2011)
Modifying cage structures in metal–organic polyhedral frameworks for H2 storage. Chem
Eur J 17(40):11162–11170
49. Lu J, Mondal A, Moulton B, Zaworotko MJ (2001) Polygons and faceted polyhedra and
nanoporous networks. Angew Chem Int Ed 40(11):2113–2116
50. Larsen RW, Wojtas L (2012) Photophysical studies of Ru(II)tris(2,2
0 -bipyridine) confined
within a Zn(II)-trimesic acid polyhedral metal-organic framework. J Phys Chem A 116
(30):7830–7835
51. McKeithan CR, Mayers JM, Wojtas L, Larsen RW (2018) Photophysical studies of Ru(II)tris
(2,2
0 -bipyridine) encapsulated within the ZnHKUST-1 metal organic framework. Inorg Chim
Acta 483:1–5
52. Lainé P, Lanz M, Calzaferri G (1996) Limits of the in situ synthesis of Tris(2,2
0 -bipyridine)
ruthenium(II) in the supercages of zeolite Y. Inorg Chem 35(12):3514–3518
53. Caspar JV, Meyer TJ (1983) Photochemistry of tris(2,2
0 -bipyridine)ruthenium(2+) ion (Ru
(bpy)32+). Solvent effects. J Am Chem Soc 105(17):5583–5590
54. Komada Y, Yamauchi S, Hirota N (1988) Phosphorescence properties of lower emitting states
of [Ru(bpy)3](CI04)2. J Phys Chem 92:6511–6518
55. Heully JL, Alary F, Boggio-Pasqua M (2009) Spin-orbit effects on the photophysical properties
of Ru(bpy)3(2+). J Chem Phys 131(18):184308
56. Dhotel A, Chen Z, Delbreilh L, Youssef B, Saiter J-M, Tan L (2013) Molecular motions in
functional self-assembled nanostructures. Int J Mol Sci 14(2):2303–2333
57. Liu Y, Goebl J, Yin Y (2013) Templated synthesis of nanostructured materials. Chem Soc Rev
42(7):2610–2653
58. Santra A, Bharadwaj PK (2014) Solvent-induced structural diversity of partially fluorinated,
stable Pb(II) metal–organic frameworks and their luminescence properties. Cryst Growth Des
14(3):1476–1485
59. Zhang Z, Zaworotko MJ (2014) Template-directed synthesis of metal–organic materials. Chem
Soc Rev 43(16):5444–5455
60. Liu Y, Liu S, He D, Li N, Ji Y, Zheng Z, Luo F, Liu S, Shi Z, Hu C (2015) Crystal facets make a
profound difference in polyoxometalate-containing metal–organic frameworks as catalysts for
biodiesel production. J Am Chem Soc 137(39):12697–12703
61. Xie J (2008) Investigation of inorganic–organic hybrid materials containing polyoxometalate
cluster anions and organic dye cations. J Coord Chem 61(24):3993–4003
62. Whittington CL, Wojtas L, Larsen RW (2014) Ruthenium(II) tris(2,2
0 -bipyridine)-templated
zinc(II) 1,3,5-tris(4-carboxyphenyl)benzene metal organic frameworks: structural characterization and photophysical properties. Inorg Chem 53(1):160–166
63. Whittington CL, Wojtas L, Gao WY, Ma S, Larsen RW (2015) A new photoactive Ru(II)tris
(2,2
0 -bipyridine) templated Zn(II) benzene-1,4-dicarboxylate metal organic framework: structure and photophysical properties. Dalton Trans 44(12):5331–5337
Guest-Based Photoactive Porous Materials Based upon Zn-Carboxylate Metal. . .
183
Isoreticular expansion of metal–organic frameworks with triangular and square building units
and the lowest calculated density for porous crystals. Inorg Chem 50(18):9147–9152
44. Yaghi OM, O’Keeffe M, Ockwig NW, Chae HK, Eddaoudi M, Kim J (2003) Reticular
synthesis and the design of new materials. Nature 423(6941):705–714
45. Bourne SA, Lu J, Mondal A, Moulton B, Zaworotko MJ (2001) Self-assembly of nanometerscale secondary building units into an undulating two-dimensional network with two types of
hydrophobic cavity. Angew Chem Int Ed 40(11):2111–2113
46. Farha OK, Wilmer CE, Eryazici I, Hauser BG, Parilla PA, O’Neill K, Sarjeant AA, Nguyen ST,
Snurr RQ, Hupp JT (2012) Designing higher surface area metal–organic frameworks: are triple
bonds better than phenyls? J Am Chem Soc 134(24):9860–9863
47. Ma S, Sun D, Simmons JM, Collier CD, Yuan D, Zhou H-C (2008) Metal-organic framework
from an anthracene derivative containing nanoscopic cages exhibiting high methane uptake. J
Am Chem Soc 130(3):1012–1016
48. Yan Y, Blake AJ, Lewis W, Barnett SA, Dailly A, Champness NR, Schröder M (2011)
Modifying cage structures in metal–organic polyhedral frameworks for H2 storage. Chem
Eur J 17(40):11162–11170
49. Lu J, Mondal A, Moulton B, Zaworotko MJ (2001) Polygons and faceted polyhedra and
nanoporous networks. Angew Chem Int Ed 40(11):2113–2116
50. Larsen RW, Wojtas L (2012) Photophysical studies of Ru(II)tris(2,2
0 -bipyridine) confined
within a Zn(II)-trimesic acid polyhedral metal-organic framework. J Phys Chem A 116
(30):7830–7835
51. McKeithan CR, Mayers JM, Wojtas L, Larsen RW (2018) Photophysical studies of Ru(II)tris
(2,2
0 -bipyridine) encapsulated within the ZnHKUST-1 metal organic framework. Inorg Chim
Acta 483:1–5
52. Lainé P, Lanz M, Calzaferri G (1996) Limits of the in situ synthesis of Tris(2,2
0 -bipyridine)
ruthenium(II) in the supercages of zeolite Y. Inorg Chem 35(12):3514–3518
53. Caspar JV, Meyer TJ (1983) Photochemistry of tris(2,2
0 -bipyridine)ruthenium(2+) ion (Ru
(bpy)32+). Solvent effects. J Am Chem Soc 105(17):5583–5590
54. Komada Y, Yamauchi S, Hirota N (1988) Phosphorescence properties of lower emitting states
of [Ru(bpy)3](CI04)2. J Phys Chem 92:6511–6518
55. Heully JL, Alary F, Boggio-Pasqua M (2009) Spin-orbit effects on the photophysical properties
of Ru(bpy)3(2+). J Chem Phys 131(18):184308
56. Dhotel A, Chen Z, Delbreilh L, Youssef B, Saiter J-M, Tan L (2013) Molecular motions in
functional self-assembled nanostructures. Int J Mol Sci 14(2):2303–2333
57. Liu Y, Goebl J, Yin Y (2013) Templated synthesis of nanostructured materials. Chem Soc Rev
42(7):2610–2653
58. Santra A, Bharadwaj PK (2014) Solvent-induced structural diversity of partially fluorinated,
stable Pb(II) metal–organic frameworks and their luminescence properties. Cryst Growth Des
14(3):1476–1485
59. Zhang Z, Zaworotko MJ (2014) Template-directed synthesis of metal–organic materials. Chem
Soc Rev 43(16):5444–5455
60. Liu Y, Liu S, He D, Li N, Ji Y, Zheng Z, Luo F, Liu S, Shi Z, Hu C (2015) Crystal facets make a
profound difference in polyoxometalate-containing metal–organic frameworks as catalysts for
biodiesel production. J Am Chem Soc 137(39):12697–12703
61. Xie J (2008) Investigation of inorganic–organic hybrid materials containing polyoxometalate
cluster anions and organic dye cations. J Coord Chem 61(24):3993–4003
62. Whittington CL, Wojtas L, Larsen RW (2014) Ruthenium(II) tris(2,2
0 -bipyridine)-templated
zinc(II) 1,3,5-tris(4-carboxyphenyl)benzene metal organic frameworks: structural characterization and photophysical properties. Inorg Chem 53(1):160–166
63. Whittington CL, Wojtas L, Gao WY, Ma S, Larsen RW (2015) A new photoactive Ru(II)tris
(2,2
0 -bipyridine) templated Zn(II) benzene-1,4-dicarboxylate metal organic framework: structure and photophysical properties. Dalton Trans 44(12):5331–5337
Guest-Based Photoactive Porous Materials Based upon Zn-Carboxylate Metal. . .
183
