-
1
-
-
82555193631
-
Hematite-Based Solar Water Splitting: Challenges and Opportunities
-
Y. Lin, G. Yuan, S. Sheehan, S. Zhou, and D. Wang, “Hematite-Based Solar Water Splitting: Challenges and Opportunities,” Energy Environ. Sci., 4 [12] 4862–9 (2011).
-
(2011)
Energy Environ. Sci.
, vol.4
, Issue.12
, pp. 4862-4869
-
-
Lin, Y.1
Yuan, G.2
Sheehan, S.3
Zhou, S.4
Wang, D.5
-
4
-
-
77957012381
-
3 Electrode
-
pp
-
3 Electrode,” J. Phys. D, 43 [32] 325101, 7pp (2010).
-
(2010)
J. Phys. D
, vol.43
, Issue.32
, pp. 325101-325107
-
-
Cao, J.Y.1
Kako, T.2
Kikugawa, N.3
Ye, J.H.4
-
5
-
-
79952270805
-
Nanonet-Based Hematite Heteronanostructures for Efficient Solar Water Splitting
-
Y. Lin, S. Zhou, S. W. Sheehan, and D. Wang, “Nanonet-Based Hematite Heteronanostructures for Efficient Solar Water Splitting,” J. Am. Chem. Soc., 133 [8] 2398–401 (2011).
-
(2011)
J. Am. Chem. Soc.
, vol.133
, Issue.8
, pp. 2398-2401
-
-
Lin, Y.1
Zhou, S.2
Sheehan, S.W.3
Wang, D.4
-
8
-
-
34547321066
-
Enhancement of Photoelectric Conversion Properties of SrTiO3/α-Fe2O3 Heterojunction Photoanode
-
Y. Wang, et al., “Enhancement of Photoelectric Conversion Properties of SrTiO3/α-Fe2O3 Heterojunction Photoanode,” J. Phys. D, 40 [13] 3925–30 (2007).
-
(2007)
J. Phys. D
, vol.40
, Issue.13
, pp. 3925-3930
-
-
Wang, Y.1
-
10
-
-
0021444262
-
3α
-
3α,” Mater. Chem. Phys., 10 [6] 503–18 (1984).
-
(1984)
Mater. Chem. Phys.
, vol.10
, Issue.6
, pp. 503-518
-
-
Benjelloun, D.1
Bonnet, J.P.2
Doumerc, J.P.3
Launay, J.C.4
Onillon, M.5
Hagenmuller, P.6
-
11
-
-
68049126236
-
Anisotropic Photocatalytic Properties of Hematite
-
C. M. Eggleston, A. J. A. Shankle, A. J. Moyer, I. Cesar, and M. Grätzel, “Anisotropic Photocatalytic Properties of Hematite,” Aquat. Sci., 71 [2] 151–9 (2009).
-
(2009)
Aquat. Sci.
, vol.71
, Issue.2
, pp. 151-159
-
-
Eggleston, C.M.1
Shankle, A.J.A.2
Moyer, A.J.3
Cesar, I.4
Grätzel, M.5
-
13
-
-
0032497773
-
3(0001) Surfaces: Synchrotron X-ray Photoemission Studies and Thermodynamic Calculations
-
3(0001) Surfaces: Synchrotron X-ray Photoemission Studies and Thermodynamic Calculations,” Surf. Sci., 417 [1] 53–65 (1998).
-
(1998)
Surf. Sci.
, vol.417
, Issue.1
, pp. 53-65
-
-
Liu, P.1
Kendelewicz, T.2
Brown, G.E.3
Nelson, E.J.4
Chambers, S.A.5
-
14
-
-
34249883851
-
3(11¯02) Surface Structure: Role of Surface Preparation
-
3(11¯02) Surface Structure: Role of Surface Preparation,” Surf. Sci., 601 [12] L59–64 (2007).
-
(2007)
Surf. Sci.
, vol.601
, Issue.12
, pp. L59-64
-
-
Tanwar, K.S.1
Catalano, J.G.2
Petitto, S.C.3
Ghose, S.K.4
Eng, P.J.5
Trainor, T.P.6
-
15
-
-
10044224848
-
Structure and Reactivity of the Hydrated Hematite (0001) Surface
-
T. P. Trainor, et al., “Structure and Reactivity of the Hydrated Hematite (0001) Surface,” Surf. Sci., 573 [2] 204–24 (2004).
-
(2004)
Surf. Sci.
, vol.573
, Issue.2
, pp. 204-224
-
-
Trainor, T.P.1
-
16
-
-
0036683078
-
3 (012) Surface Using EELS, LEED and Water TPD
-
3 (012) Surface Using EELS, LEED and Water TPD,” Surf. Sci., 515 [1] 253–62 (2002).
-
(2002)
Surf. Sci.
, vol.515
, Issue.1
, pp. 253-262
-
-
Henderson, M.A.1
-
17
-
-
62349096669
-
Water Ordering and Surface Relaxations at the Hematite (110)–Water Interface
-
J. G. Catalano, P. Fenter, and C. Park, “Water Ordering and Surface Relaxations at the Hematite (110)–Water Interface,” Geochim. Cosmochim. Ac, 73 [8] 2242–51 (2009).
-
(2009)
Geochim. Cosmochim. Ac
, vol.73
, Issue.8
, pp. 2242-2251
-
-
Catalano, J.G.1
Fenter, P.2
Park, C.3
-
18
-
-
0029938157
-
Surface Hydroxyl Configuration of Various Crystal Faces of Hematite and Goethite
-
V. Barrón and J. Torrent, “Surface Hydroxyl Configuration of Various Crystal Faces of Hematite and Goethite,” J. Colloid Interf. Sci, 177 [2] 407–10 (1996).
-
(1996)
J. Colloid Interf. Sci
, vol.177
, Issue.2
, pp. 407-410
-
-
Barrón, V.1
Torrent, J.2
-
20
-
-
0000268786
-
2 Crystals
-
2 Crystals,” J. Phys. Chem. B, 102 [38] 7323–7 (1998).
-
(1998)
J. Phys. Chem. B
, vol.102
, Issue.38
, pp. 7323-7327
-
-
Lowekamp, J.B.1
Rohrer, G.S.2
Morris Hotsenpiller, P.A.3
Bolt, J.D.4
Farneth, W.E.5
-
21
-
-
0002519453
-
Electron Backscatter Diffraction and Orientation Imaging Microscopy
-
D. J. Dingley and D. P. Field, “Electron Backscatter Diffraction and Orientation Imaging Microscopy,” Mater. Sci. Tech, 13 [1] 69–78 (1997).
-
(1997)
Mater. Sci. Tech
, vol.13
, Issue.1
, pp. 69-78
-
-
Dingley, D.J.1
Field, D.P.2
-
22
-
-
84892192253
-
Present State of Electron Backscatter Diffraction and Prospective Developments
-
in, 2nd Edition, Edited by, A. J. Schwartz, M. Kumar, B. L. Adams, and, D. P. Field, Springer, New York
-
R. A. Schwarzer, D. P. Field, B. L. Adams, M. Kumar, and A. J. Schwartz, “Present State of Electron Backscatter Diffraction and Prospective Developments”; pp. 1–20 in Electron Backscatter Diffraction in Materials Science, 2nd Edition, Edited by A. J. Schwartz, M. Kumar, B. L. Adams and D. P. Field. Springer, New York, 2009.
-
(2009)
Electron Backscatter Diffraction in Materials Science
, pp. 1-20
-
-
Schwarzer, R.A.1
Field, D.P.2
Adams, B.L.3
Kumar, M.4
Schwartz, A.J.5
-
25
-
-
33745604763
-
Kelvin Probe Force Microscopy
-
M. Nonnenmacher, M. P. O'Boyle, and H. K. Wickramasinghe, “Kelvin Probe Force Microscopy,” Appl. Phys. Lett., 58 [25] 2921–3 (1991).
-
(1991)
Appl. Phys. Lett.
, vol.58
, Issue.25
, pp. 2921-2923
-
-
Nonnenmacher, M.1
O'Boyle, M.P.2
Wickramasinghe, H.K.3
-
26
-
-
84865416000
-
Influence of Surface Adsorption on Work Function Measurements on Gold-Platinum Interface Using Scanning Kelvin Probe Microscopy
-
4pp
-
S. Mugo and J. Yuan, “Influence of Surface Adsorption on Work Function Measurements on Gold-Platinum Interface Using Scanning Kelvin Probe Microscopy,” J. Phys: Conf. Ser., 371 [1] 012030, 4pp (2012).
-
(2012)
J. Phys: Conf. Ser.
, vol.371
, Issue.1
, pp. 012030
-
-
Mugo, S.1
Yuan, J.2
-
28
-
-
35148878235
-
High-Resolution Kelvin Probe Microscopy in Corrosion Science: Scanning Kelvin Probe Force Microscopy (SKPFM) Versus Classical Scanning Kelvin Probe (SKP)
-
M. Rohwerder and F. Turcu, “High-Resolution Kelvin Probe Microscopy in Corrosion Science: Scanning Kelvin Probe Force Microscopy (SKPFM) Versus Classical Scanning Kelvin Probe (SKP).,” Electrochimi. Acta, 53 [2] 290–9 (2007).
-
(2007)
Electrochimi. Acta
, vol.53
, Issue.2
, pp. 290-299
-
-
Rohwerder, M.1
Turcu, F.2
-
29
-
-
0001402033
-
Capacitive Effects on Quantitative Dopant Profiling With Scanned Electrostatic Force Microscopes
-
T. Hochwitz, A. K. Henning, C. Levey, C. Daghlian, and J. Slinkman, “Capacitive Effects on Quantitative Dopant Profiling With Scanned Electrostatic Force Microscopes.,” J. Vac. Sci. Technol., B, 14 [1] 457–62 (1996).
-
(1996)
J. Vac. Sci. Technol., B
, vol.14
, Issue.1
, pp. 457-462
-
-
Hochwitz, T.1
Henning, A.K.2
Levey, C.3
Daghlian, C.4
Slinkman, J.5
-
30
-
-
36448999364
-
Two Dimensional Surface Dopant Profiling in Silicon Using Scanning Kelvin Probe Microscopy
-
A. K. Henning, et al., “Two Dimensional Surface Dopant Profiling in Silicon Using Scanning Kelvin Probe Microscopy.,” J. Appl. Phys., 77 [5] 1888–96 (1995).
-
(1995)
J. Appl. Phys.
, vol.77
, Issue.5
, pp. 1888-1896
-
-
Henning, A.K.1
-
31
-
-
79251577708
-
Force Gradient Sensitive Detection in Lift-Mode Kelvin Probe Force Microscopy
-
pp
-
D. Ziegler and A. Stemmer, “Force Gradient Sensitive Detection in Lift-Mode Kelvin Probe Force Microscopy.,” Nanotechnology, 22 [7] 075501, 9pp (2011).
-
(2011)
Nanotechnology
, vol.22
, Issue.7
, pp. 075501-075509
-
-
Ziegler, D.1
Stemmer, A.2
-
32
-
-
0345534639
-
Molecular Modeling of the Surface Charging of Hematite: II. Optimal Proton Distribution and Simulation of Surface Charge Versus pH Relationships
-
J. R. Rustad, E. Wasserman, and A. R. Felmy, “Molecular Modeling of the Surface Charging of Hematite: II. Optimal Proton Distribution and Simulation of Surface Charge Versus pH Relationships.,” Surf. Sci., 424 [1] 28–35 (1999).
-
(1999)
Surf. Sci.
, vol.424
, Issue.1
, pp. 28-35
-
-
Rustad, J.R.1
Wasserman, E.2
Felmy, A.R.3
-
33
-
-
0032497765
-
Interaction of Water With the (1 × 1) and (2 × 1) Surfaces of α-Fe 2 O 3 (012)
-
M. A. Henderson, S. A. Joyce, and J. R. Rustad, “Interaction of Water With the (1 × 1) and (2 × 1) Surfaces of α-Fe 2 O 3 (012).,” Surf. Sci., 417 [1] 66–81 (1998).
-
(1998)
Surf. Sci.
, vol.417
, Issue.1
, pp. 66-81
-
-
Henderson, M.A.1
Joyce, S.A.2
Rustad, J.R.3
-
34
-
-
0344918734
-
The Zero Point of Charge of Oxides1
-
G. A. Parks and P. D. Bruyn, “The Zero Point of Charge of Oxides1.,” J. Phys. Chem., 66 [6] 967–73 (1962).
-
(1962)
J. Phys. Chem.
, vol.66
, Issue.6
, pp. 967-973
-
-
Parks, G.A.1
Bruyn, P.D.2
-
35
-
-
42049084858
-
Linked Reactivity at Mineral-Water Interfaces Through Bulk Crystal Conduction
-
S. V. Yanina and K. M. Rosso, “Linked Reactivity at Mineral-Water Interfaces Through Bulk Crystal Conduction.,” Science, 320 [5873] 218–22 (2008).
-
(2008)
Science
, vol.320
, Issue.5873
, pp. 218-222
-
-
Yanina, S.V.1
Rosso, K.M.2
-
37
-
-
33645849801
-
Computer Simulation of Electron Transfer at Hematite Surfaces
-
S. Kerisit and K. M. Rosso, “Computer Simulation of Electron Transfer at Hematite Surfaces,” Geochim. Cosmochim. Ac, 70 [8] 1888–903 (2006).
-
(2006)
Geochim. Cosmochim. Ac
, vol.70
, Issue.8
, pp. 1888-1903
-
-
Kerisit, S.1
Rosso, K.M.2
-
39
-
-
77954209909
-
Electronic, Structural, and Magnetic Effects of 3d Transition Metals in Hematite
-
6pp
-
M. N. Huda, A. Walsh, Y. Yan, S.-H. Wei, and M. M. Al-Jassim, “Electronic, Structural, and Magnetic Effects of 3d Transition Metals in Hematite,” J. Appl. Phys., 107 [12] 123712, 6pp (2010).
-
(2010)
J. Appl. Phys.
, vol.107
, Issue.12
, pp. 123712
-
-
Huda, M.N.1
Walsh, A.2
Yan, Y.3
Wei, S.-H.4
Al-Jassim, M.M.5
-
40
-
-
0005839081
-
2 Surfaces
-
2 Surfaces,” J. Phys. Chem. B, 102 [17] 3216–26 (1998).
-
(1998)
J. Phys. Chem. B
, vol.102
, Issue.17
, pp. 3216-3226
-
-
Morris Hotsenpiller, P.A.1
Bolt, J.D.2
Farneth, W.E.3
Lowekamp, J.B.4
Rohrer, G.S.5
-
41
-
-
35048889094
-
2 (Rutile) (110) and (100) Surfaces: Dependence on Solution pH
-
2 (Rutile) (110) and (100) Surfaces: Dependence on Solution pH,” J. Am. Chem. Soc., 129 [37] 11569–78 (2007).
-
(2007)
J. Am. Chem. Soc.
, vol.129
, Issue.37
, pp. 11569-11578
-
-
Imanishi, A.1
Okamura, T.2
Ohashi, N.3
Nakamura, R.4
Nakato, Y.5
-
42
-
-
0036376739
-
2 Particles and Their Roles in Photocatalytic Reactions
-
2 Particles and Their Roles in Photocatalytic Reactions,” New J. Chem., 26 [9] 1167–70 (2002).
-
(2002)
New J. Chem.
, vol.26
, Issue.9
, pp. 1167-1170
-
-
Ohno, T.1
Sarukawa, K.2
Matsumura, M.3
-
43
-
-
77956093928
-
2 Microspheres Composed of Anatase Polyhedra With Exposed {001} Facets
-
2 Microspheres Composed of Anatase Polyhedra With Exposed {001} Facets,” J. Am. Chem. Soc., 132 [34] 11914–16 (2010).
-
(2010)
J. Am. Chem. Soc.
, vol.132
, Issue.34
, pp. 11914-11916
-
-
Liu, S.1
Yu, J.2
Jaroniec, M.3
-
46
-
-
33845374527
-
Photoassisted Water Decomposition by Ferroelectric Lead Zirconate Titanate Ceramics With Anomalous Photovoltaic Effects
-
Y. Inoue, K. Sato, K. Sato, and H. Miyama, “Photoassisted Water Decomposition by Ferroelectric Lead Zirconate Titanate Ceramics With Anomalous Photovoltaic Effects,” J. Phys. Chem., 90 [13] 2809–10 (1986).
-
(1986)
J. Phys. Chem.
, vol.90
, Issue.13
, pp. 2809-2810
-
-
Inoue, Y.1
Sato, K.2
Sato, K.3
Miyama, H.4
-
48
-
-
84900024966
-
Factors Impacted on Anisotropic Photocatalytic Oxidization Activity of ZnO: Surface Band Bending, Surface Free Energy and Surface Conductance
-
G. Li, Z. Yi, H. Wang, C. Jia, and W. Zhang, “Factors Impacted on Anisotropic Photocatalytic Oxidization Activity of ZnO: Surface Band Bending, Surface Free Energy and Surface Conductance,” Appl. Catal. B, 158–159, 280–5 (2014).
-
(2014)
Appl. Catal. B
, vol.158-159
, pp. 280-285
-
-
Li, G.1
Yi, Z.2
Wang, H.3
Jia, C.4
Zhang, W.5
|