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39. C.G. Silva, I. Luz, F.X.L. Xamena, A. Corma, H. García, Water stable Zr-benzenedicarboxylate
metal-organic frameworks as photocatalysts for hydrogen generation. Chem. Eur. J. 16 ,
11133-11138 (2010)
40. C. Wang, Z. Xie, K.E. Krafft, W. Lin, Doping metal-organic frameworks for water oxida-
tion, carbon dioxide reduction, and organic photocatalysis. J. Am. Chem. Soc. 133 , 13445-
13454 (2011)
41. D. Sun, Y. Fu, W. Liu, L. Ye, D. Wang, L. Yang, X. Fu, Z. Li, Studies on photocatalytic CO 2
reduction over NH 2 -Uio-66(Zr) and its derivatives: towards a better understanding of photo-
catalysis on metal-organic frameworks. Chem. Eur. J. 19 , 14279-14285 (2013)
42. A. Fateeva, P.A. Chater, C.P. Ireland, A.A. Tahir, Y.Z. Khimyak, P.V. Wiper, J.R. Darwent,
M.J. Rosseinsky, A water-stable porphyrin-based metal-organic framework active for visi-
ble-light photocatalysis. Angew. Chem. Int. Ed. 51 , 7440-7444 (2012)
43. K. Barthelet, D. Riou, M. Nogues, G. F←rey, Synthesis, structure, and magnetic properties of
two new vanadocarboxylates with three-dimensional hybrid frameworks. Inorg. Chem. 42 ,
1739-1743 (2003)
44. B. O'Regan, M. Gr¦tzel, A low-cost, high-eficiency solar cell based on dye-sensitized col-
loidal TiO 2 films. Nature 353 , 737-740 (1991)
45. J. Burschka, N. Pellet, S.J. Moon, R. Humphry-Baker, P. Gao, M.K. Nazeeruddin,
M. Gr¦tzel, Sequential deposition as a route to high-performance perovskite-sensitized solar
cells. Nature 499 , 316-320 (2013)
46. T.Y. Ma, Y.S. Wei, T.Z. Ren, L. Liu, Q. Guo, Z.Y. Yuan, Hexagonal mesoporous titanium
tetrasulfonates with large conjugated hybrid framework for photoelectric conversion. ACS
Appl. Mater. Interfaces 2 , 3563-3571 (2010)
47. K. Hanson, M.K. Brennaman, H. Luo, C.R.K. Glasson, J.J. Concepcion, W. Song, T.J.
Meyer, Photostability of phosphonate-derivatized, Ru-II polypyridyl complexes on metal
oxide surfaces. ACS Appl. Mater. Interfaces 4 , 1462-1469 (2012)
48. T.P. Brewster, S.J. Konezny, S.W. Sheehan, L.A. Martini, C.A. Schmuttenmaer, V.S. Batista,
R.H. Crabtree, Hydroxamate anchors for improved photoconversion in dye-sensitized solar
cells. Inorg. Chem. 52 , 6752-6764 (2013)
49. R. Luschtinetz, J. Frenzel, T. Milek, G. Seifert, Adsorption of phosphonic acid at the TiO 2
anatase (101) and rutile (110) surfaces. J. Phys. Chem. C 113 , 5730-5740 (2009)
50. K.R. Mulhern, A. Orchard, D.F. Watson, M.R. Detty, Influence of surface-attachment func-
tionality on the aggregation, persistence, and electron-transfer reactivity of chalcogenorho-
damine dyes on TiO 2 . Langmuir 28 , 7071-7082 (2012)
51. K. Hanson, M.K. Brennaman, A. Ito, H. Luo, W. Song, K.A. Parker, R. Ghosh, M.R. Norris,
C.R.K. Glasson, J.J. Concepcion, R. Lopez, T.J. Meyer, Structure-property relationships
in phosphonate-derivatized, Ru-II polypyridyl dyes on metal oxide surfaces in an aqueous
environment. J. Phys. Chem. C 116 , 14837-14847 (2012)
52. D.G. Brown, P.A. Schauer, J. Borau-Garcia, B.R. Fancy, C.P. Berlinguette, Stabilization of
ruthenium sensitizers to TiO 2 surfaces through cooperative anchoring groups. J. Am. Chem.
Soc. 135 , 1692-1695 (2013)
53. S. Rühle, M. Shalom, A. Zaban, Quantum-dot-sensitized solar cells. ChemPhysChem 11 ,
2290-2304 (2010)
54. I. Robel, V. Subramanian, M. Kuno, P.V. Kamat, Quantum dot solar cells. Harvesting light
energy with CdSe nanocrystals molecularly linked to mesoscopic TiO 2 films. J. Am. Chem.
Soc. 128 , 2385-2393 (2006)
55. P. Ardalan, T.P. Brennan, H. Lee, J.R. Bakke, I.K. Ding, M.D. McGehee, S.F. Bent, Effects
of self-assembled monolayers on solid-state CdS quantum dot sensitized solar cells. ACS
Nano 3 , 1495-1504 (2011)
56. R.S. Dibbell, D.G. Youker, D.F. Watson, Excited-state electron transfer from CdS quantum
dots to TiO 2 nanoparticles via molecular linkers with phenylene bridges. J. Phys. Chem. C
113 , 18643-18651 (2009)
57. R.S. Dibbell, D.F. Watson, Distance-dependent electron transfer in tethered assemblies of
CdS quantum dots and TiO 2 nanoparticles. J. Phys. Chem. C 113 , 3139-3149 (2009)
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