References
1. Wang TC, Bury W, Gómez-Gualdrón DA et al (2015) Ultrahigh surface area zirconium MOFs
and insights into the applicability of the BET theory. J Am Chem Soc 137(10):3585–3591
2. Furukawa H, Cordova KE, O’Keeffe M, Yaghi OM (2013) The chemistry and applications of
metal-organic frameworks. Science 341(6149):1230444
3. Zhao X, Xiao B, Fletcher AJ, Thomas KM, Bradshaw D, Rosseinsky MJ (2004) Hysteretic
adsorption and desorption of hydrogen by nanoporous metal-organic frameworks. Science 306
(5698):1012
4. Rosi NL, Eckert J, Eddaoudi M, Vodak DT, Kim J, Keeffe M, Yaghi OM (2003) Hydrogen
storage in microporous metal-organic frameworks. Science 300(5622):1127
5. Taylor JM, Mah RK, Moudrakovski IL, Ratcliffe CI, Vaidhyanathan R, Shimizu GKH (2010)
Facile proton conduction via ordered water molecules in a phosphonate metal-organic framework. J Am Chem Soc 132(40):14055–14057
6. Sadakiyo M, Yamada T, Kitagawa H (2009) Rational designs for highly proton-conductive
metal-organic frameworks. J Am Chem Soc 131(29):9906–9907
7. Yamada T, Otsubo K, Makiura R, Kitagawa H (2013) Designer coordination polymers:
dimensional crossover architectures and proton conduction. Chem Soc Rev 42(16):6655–6669
8. Della Rocca J, Liu D, Lin W (2011) Nanoscale metal-organic frameworks for biomedical
imaging and drug delivery. Acc Chem Res 44(10):957–968
9. Seo JS, Whang D, Lee H, Im Jun S, Oh J, Jeon YJ, Kim K (2000) A homochiral metal-organic
porous material for enantioselective separation and catalysis. Nature 404(6781):982–986
10. Hill RJ, Long DL, Champness NR, Hubberstey P, Schröder M (2005) New approaches to the
analysis of high connectivity materials: design frameworks based upon 44- and 63-subnet
tectons. Acc Chem Res 38(4):335–348
11. Zhou T, Du Y, Borgna A, Hong J, Wang Y, Han J, Zhang W, Xu R (2013) Post-synthesis
modification of a metal-organic framework to construct a bifunctional photocatalyst for hydrogen production. Energy Environ Sci 6(11):3229–3234
12. Horiuchi Y, Toyao T, Saito M, Mochizuki K, Iwata M, Higashimura H, Anpo M, Matsuoka M
(2012) Visible-light-promoted photocatalytic hydrogen production by using an aminofunctionalized Ti (IV) metal-organic framework. J Phys Chem C 116(39):20848–20853
13. Wang C, DeKrafft KE, Lin W (2012) Pt nanoparticles@photoactive metal-organic frameworks:
efficient hydrogen evolution via synergistic photoexcitation and electron injection. J Am Chem
Soc 134(17):7211–7214
14. Fateeva A, Chater PA, Ireland CP, Tahir AA, Khimyak YZ, Wiper PV, Darwent JR, Rosseinsky
MJ (2012) A water-stable porphyrin-based metal-organic framework active for visible-light
photocatalysis. Angew Chem 124(30):7558–7562
15. Kataoka Y, Sato K, Miyazaki Y, Masuda K, Tanaka H, Naito S, Mori W (2009) Photocatalytic
hydrogen production from water using porous material [Ru 2 (p-BDC) 2 ] n . Energy Environ Sci 2
(4):397–400
16. Xiao J, Shang Q, Xiong Y, Zhang Q, Luo Y, Yu S, Jiang H (2016) Boosting photocatalytic
hydrogen production of a metal-organic framework decorated with platinum nanoparticles: the
platinum location matters. Angew Chem 128(32):9535–9539
17. Gomes Silva C, Luz I, Llabrés i Xamena FX, Corma A, García H (2010) Water stable
Zr-benzenedicarboxylate metal-organic frameworks as photocatalysts for hydrogen generation.
Chem A Eur J 16(36):11133–11138
18. Fu Y, Sun D, Chen Y, Huang R, Ding Z, Fu X, Li Z (2012) An amine-functionalized titanium
metal-organic framework photocatalyst with visible-light-induced activity for CO 2 reduction.
Angew Chem 124(14):3420–3423
References
409
1. Wang TC, Bury W, Gómez-Gualdrón DA et al (2015) Ultrahigh surface area zirconium MOFs
and insights into the applicability of the BET theory. J Am Chem Soc 137(10):3585–3591
2. Furukawa H, Cordova KE, O’Keeffe M, Yaghi OM (2013) The chemistry and applications of
metal-organic frameworks. Science 341(6149):1230444
3. Zhao X, Xiao B, Fletcher AJ, Thomas KM, Bradshaw D, Rosseinsky MJ (2004) Hysteretic
adsorption and desorption of hydrogen by nanoporous metal-organic frameworks. Science 306
(5698):1012
4. Rosi NL, Eckert J, Eddaoudi M, Vodak DT, Kim J, Keeffe M, Yaghi OM (2003) Hydrogen
storage in microporous metal-organic frameworks. Science 300(5622):1127
5. Taylor JM, Mah RK, Moudrakovski IL, Ratcliffe CI, Vaidhyanathan R, Shimizu GKH (2010)
Facile proton conduction via ordered water molecules in a phosphonate metal-organic framework. J Am Chem Soc 132(40):14055–14057
6. Sadakiyo M, Yamada T, Kitagawa H (2009) Rational designs for highly proton-conductive
metal-organic frameworks. J Am Chem Soc 131(29):9906–9907
7. Yamada T, Otsubo K, Makiura R, Kitagawa H (2013) Designer coordination polymers:
dimensional crossover architectures and proton conduction. Chem Soc Rev 42(16):6655–6669
8. Della Rocca J, Liu D, Lin W (2011) Nanoscale metal-organic frameworks for biomedical
imaging and drug delivery. Acc Chem Res 44(10):957–968
9. Seo JS, Whang D, Lee H, Im Jun S, Oh J, Jeon YJ, Kim K (2000) A homochiral metal-organic
porous material for enantioselective separation and catalysis. Nature 404(6781):982–986
10. Hill RJ, Long DL, Champness NR, Hubberstey P, Schröder M (2005) New approaches to the
analysis of high connectivity materials: design frameworks based upon 44- and 63-subnet
tectons. Acc Chem Res 38(4):335–348
11. Zhou T, Du Y, Borgna A, Hong J, Wang Y, Han J, Zhang W, Xu R (2013) Post-synthesis
modification of a metal-organic framework to construct a bifunctional photocatalyst for hydrogen production. Energy Environ Sci 6(11):3229–3234
12. Horiuchi Y, Toyao T, Saito M, Mochizuki K, Iwata M, Higashimura H, Anpo M, Matsuoka M
(2012) Visible-light-promoted photocatalytic hydrogen production by using an aminofunctionalized Ti (IV) metal-organic framework. J Phys Chem C 116(39):20848–20853
13. Wang C, DeKrafft KE, Lin W (2012) Pt nanoparticles@photoactive metal-organic frameworks:
efficient hydrogen evolution via synergistic photoexcitation and electron injection. J Am Chem
Soc 134(17):7211–7214
14. Fateeva A, Chater PA, Ireland CP, Tahir AA, Khimyak YZ, Wiper PV, Darwent JR, Rosseinsky
MJ (2012) A water-stable porphyrin-based metal-organic framework active for visible-light
photocatalysis. Angew Chem 124(30):7558–7562
15. Kataoka Y, Sato K, Miyazaki Y, Masuda K, Tanaka H, Naito S, Mori W (2009) Photocatalytic
hydrogen production from water using porous material [Ru 2 (p-BDC) 2 ] n . Energy Environ Sci 2
(4):397–400
16. Xiao J, Shang Q, Xiong Y, Zhang Q, Luo Y, Yu S, Jiang H (2016) Boosting photocatalytic
hydrogen production of a metal-organic framework decorated with platinum nanoparticles: the
platinum location matters. Angew Chem 128(32):9535–9539
17. Gomes Silva C, Luz I, Llabrés i Xamena FX, Corma A, García H (2010) Water stable
Zr-benzenedicarboxylate metal-organic frameworks as photocatalysts for hydrogen generation.
Chem A Eur J 16(36):11133–11138
18. Fu Y, Sun D, Chen Y, Huang R, Ding Z, Fu X, Li Z (2012) An amine-functionalized titanium
metal-organic framework photocatalyst with visible-light-induced activity for CO 2 reduction.
Angew Chem 124(14):3420–3423
References
409
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