296
14 Principles: Bond-Band-Barrier Correlation
28. C.Q. Sun, Relaxation of the Chemical Bond. Springer Series in Chemical Physics, vol. 108
(Springer, Heidelberg, 2014), 807p
29. C.Q. Sun, Y. Sun, The Attribute of Water: Single Notion, Multiple Myths. Springer Series in
Chemical Physics, vol. 113 (Springer, Heidelberg, 2016). 494 pp
30. C.Q. Sun, Oxidation electronics: bond-band-barrier correlation and its applications. Prog. Mater
Sci. 48(6), 521–685 (2003)
31. C.Q. Sun, Size dependence of nanostructures: impact of bond order deficiency. Prog. Solid
State Chem. 35(1), 1–159 (2007)
32. J.D. Jorgensen, Defects and superconductivity in the copper oxides. Phys. Today 44, 34–40
(1991)
33. H. Kamimura, Y. Suwa, New theoretical view for high temperature superconductivity. J. Phys.
Soc. Jpn. 62(10), 3368–3371 (1993)
34. V.M. Goldschmidt, Crystal structure and chemical correlation. Berichte Der Deutschen
Chemischen Gesellschaft 60, 1263–1296 (1927)
35. D. Adams, H. Nielsen, J. Andersen, I. Stensgaard, R. Feidenhans, J. Sørensen, Oscillatory
relaxation of the Cu(110) surface. Phys. Rev. Lett. 49(9), 669 (1982)
36. P. Jennings, C.Q. Sun, Low-energy electron diffraction, in Smart Surface Analysis Methods in
Materials Science, vol. 23, ed. by J. O’Connor, B. Sexton, R.S. Smart (Springer, 2013)
37. N. Lang, Theory of single-atom imaging in the scanning tunneling microscope, in Scanning
Tunneling Microscopy (Springer, 1986), pp. 75–78
38. C.Q. Sun, A model of bonding and band-forming for oxides and nitrides. Appl. Phys. Lett.
72(14), 1706–1708 (1998)
39. A.P. Cole, D.E. Root, P. Mukherjee, E.I. Solomon, T. Stack, A trinuclear intermediate in the
copper-mediated reduction of O 2 : four electrons from three coppers. Science 273(5283), 1848
(1996)
40. F.M. Chua, Y. Kuk, P.J. Silverman, Oxygen chemisorption on Cu(110): An atomic view by
scanning tunneling microscopy. Phys. Rev. Lett. 63(4), 386–389 (1989)
41. F. Jensen, F. Besenbacher, E. Laegsgaard, I. Stensgaard, Dynamics of oxygen-induced reconstruction on Cu(100) studied by scanning tunneling microscopy. Phys. Rev. B 42(14),
9206–9209 (1990)
42. C.Q. Sun, C.L. Bai, Modelling of non-uniform electrical potential barriers for metal surfaces
with chemisorbed oxygen. J. Phys. Condens. Matter 9(27), 5823–5836 (1997)
43. H. Rotermund, J. Lauterbach, G. Haas, The formation of subsurface oxygen on Pt(100). Appl.
Phys. A 57(6), 507–511 (1993)
44. J. Lauterbach, K. Asakura, H. Rotermund, Subsurface oxygen on Pt(100): kinetics of the
transition from chemisorbed to subsurface state and its reaction with CO, H 2 and O 2 . Surf. Sci.
313(1–2), 52–63 (1994)
45. J. Lauterbach, H. Rotermund, Spatio-temporal pattern formation during the catalytic COoxidation on Pt(100). Surf. Sci. 311(1), 231–246 (1994)
46. J. Boulliard, M. Sotto, On the relations between surface structures and morphology of crystals.
J. Cryst. Growth 110(4), 878–888 (1991)
47. R. Dietz, E. McRae, R. Campbell, Saturation of the image potential observed in low-energy
electron reflection at Cu(001) surface. Phys. Rev. Lett. 45(15), 1280 (1980)
48. M. Read, A. Christopoulos, Resonant electron surface-barrier scattering on W(001). Phys. Rev.
B 37(17), 10407 (1988)
49. A. Adnot, J. Carette, High-resolution study of low-energy-electron-diffraction threshold effects
on W(001) surface. Phys. Rev. Lett. 38(19), 1084 (1977)
50. H. Pfnür, M. Lindroos, D. Menzel, Investigation of adsorbates with low energy electron
diffraction at very low energies (VLEED). Surf. Sci. 248(1–2), 1–10 (1991)
51. J. Demuth, D. Jepsen, P. Marcus, Comments regarding the determination of the structure of c
(2 × 2) sulfur overlayers on Ni(001). Surf. Sci. 45(2), 733–739 (1974)
52. T. Fujita, Y. Okawa, Y. Matsumoto, K.-I. Tanaka, Phase boundaries of nanometer scale c (2 ×
2)-O domains on the Cu(100) surface. Phys. Rev. B 54(3), 2167 (1996)
14 Principles: Bond-Band-Barrier Correlation
28. C.Q. Sun, Relaxation of the Chemical Bond. Springer Series in Chemical Physics, vol. 108
(Springer, Heidelberg, 2014), 807p
29. C.Q. Sun, Y. Sun, The Attribute of Water: Single Notion, Multiple Myths. Springer Series in
Chemical Physics, vol. 113 (Springer, Heidelberg, 2016). 494 pp
30. C.Q. Sun, Oxidation electronics: bond-band-barrier correlation and its applications. Prog. Mater
Sci. 48(6), 521–685 (2003)
31. C.Q. Sun, Size dependence of nanostructures: impact of bond order deficiency. Prog. Solid
State Chem. 35(1), 1–159 (2007)
32. J.D. Jorgensen, Defects and superconductivity in the copper oxides. Phys. Today 44, 34–40
(1991)
33. H. Kamimura, Y. Suwa, New theoretical view for high temperature superconductivity. J. Phys.
Soc. Jpn. 62(10), 3368–3371 (1993)
34. V.M. Goldschmidt, Crystal structure and chemical correlation. Berichte Der Deutschen
Chemischen Gesellschaft 60, 1263–1296 (1927)
35. D. Adams, H. Nielsen, J. Andersen, I. Stensgaard, R. Feidenhans, J. Sørensen, Oscillatory
relaxation of the Cu(110) surface. Phys. Rev. Lett. 49(9), 669 (1982)
36. P. Jennings, C.Q. Sun, Low-energy electron diffraction, in Smart Surface Analysis Methods in
Materials Science, vol. 23, ed. by J. O’Connor, B. Sexton, R.S. Smart (Springer, 2013)
37. N. Lang, Theory of single-atom imaging in the scanning tunneling microscope, in Scanning
Tunneling Microscopy (Springer, 1986), pp. 75–78
38. C.Q. Sun, A model of bonding and band-forming for oxides and nitrides. Appl. Phys. Lett.
72(14), 1706–1708 (1998)
39. A.P. Cole, D.E. Root, P. Mukherjee, E.I. Solomon, T. Stack, A trinuclear intermediate in the
copper-mediated reduction of O 2 : four electrons from three coppers. Science 273(5283), 1848
(1996)
40. F.M. Chua, Y. Kuk, P.J. Silverman, Oxygen chemisorption on Cu(110): An atomic view by
scanning tunneling microscopy. Phys. Rev. Lett. 63(4), 386–389 (1989)
41. F. Jensen, F. Besenbacher, E. Laegsgaard, I. Stensgaard, Dynamics of oxygen-induced reconstruction on Cu(100) studied by scanning tunneling microscopy. Phys. Rev. B 42(14),
9206–9209 (1990)
42. C.Q. Sun, C.L. Bai, Modelling of non-uniform electrical potential barriers for metal surfaces
with chemisorbed oxygen. J. Phys. Condens. Matter 9(27), 5823–5836 (1997)
43. H. Rotermund, J. Lauterbach, G. Haas, The formation of subsurface oxygen on Pt(100). Appl.
Phys. A 57(6), 507–511 (1993)
44. J. Lauterbach, K. Asakura, H. Rotermund, Subsurface oxygen on Pt(100): kinetics of the
transition from chemisorbed to subsurface state and its reaction with CO, H 2 and O 2 . Surf. Sci.
313(1–2), 52–63 (1994)
45. J. Lauterbach, H. Rotermund, Spatio-temporal pattern formation during the catalytic COoxidation on Pt(100). Surf. Sci. 311(1), 231–246 (1994)
46. J. Boulliard, M. Sotto, On the relations between surface structures and morphology of crystals.
J. Cryst. Growth 110(4), 878–888 (1991)
47. R. Dietz, E. McRae, R. Campbell, Saturation of the image potential observed in low-energy
electron reflection at Cu(001) surface. Phys. Rev. Lett. 45(15), 1280 (1980)
48. M. Read, A. Christopoulos, Resonant electron surface-barrier scattering on W(001). Phys. Rev.
B 37(17), 10407 (1988)
49. A. Adnot, J. Carette, High-resolution study of low-energy-electron-diffraction threshold effects
on W(001) surface. Phys. Rev. Lett. 38(19), 1084 (1977)
50. H. Pfnür, M. Lindroos, D. Menzel, Investigation of adsorbates with low energy electron
diffraction at very low energies (VLEED). Surf. Sci. 248(1–2), 1–10 (1991)
51. J. Demuth, D. Jepsen, P. Marcus, Comments regarding the determination of the structure of c
(2 × 2) sulfur overlayers on Ni(001). Surf. Sci. 45(2), 733–739 (1974)
52. T. Fujita, Y. Okawa, Y. Matsumoto, K.-I. Tanaka, Phase boundaries of nanometer scale c (2 ×
2)-O domains on the Cu(100) surface. Phys. Rev. B 54(3), 2167 (1996)
