Electron Transfer Reactions on Extremely Small Semiconductor Colloids Studied by Pulse Radiolysis
暂无分享,去创建一个
N. Dimitrijević | T. Rajh | A. Nozik | M. Nenadovic | O. Mićić | O. Micic
[1] Tijana Rajh,et al. Size quantization in small semiconductor particles , 1985 .
[2] T. Rajh,et al. Electron transfer reactions and flat-band potentials of tungsten(VI) oxide colloids , 1984 .
[3] Horst Weller,et al. Photo-Chemistry of Colloidal Metal Sulfides 8. Photo-Physics of Extremely Small CdS Particles: Q-State CdS and Magic Agglomeration Numbers , 1984 .
[4] N. Dimitrijević,et al. Interfacial electron-transfer equilibria and flatband potentials of .alpha.-ferric oxide and titanium dioxide colloids studied by pulse radiolysis , 1984 .
[5] J. Williams. Work with nucleic acids , 1984, Nature.
[6] A. Henglein,et al. Photochemistry of Colloidal Metal Sulfides. 7. Absorption and Fluorescence of Extremely Small ZnS Particles (The World of the Neglected Dimensions) , 1984 .
[7] Louis E. Brus,et al. Size effects in the excited electronic states of small colloidal CdS crystallites , 1984 .
[8] Louis E. Brus,et al. Electron-electron and electron-hole interactions in small semiconductor crystallites : The size dependence of the lowest excited electronic state , 1984 .
[9] M. Laviron,et al. One and two-dimensional quantum localization in GaAs wires of rectangular cross-sections , 1983 .
[10] L. Brus,et al. Quantum size effects in the redox potentials, resonance Raman spectra, and electronic spectra of CdS crystallites in aqueous solution , 1983 .
[11] R. A. Logan,et al. Toward quantum well wires: Fabrication and optical properties , 1982 .
[12] M. Feng,et al. Low‐noise GaAs field‐effect transistor made by molecular beam epitaxy , 1982 .
[13] A. J. Frank,et al. Interfacial electron-transfer reactions in colloidal semiconductor dispersions. Kinetic analysis , 1982 .
[14] J. Ramsden,et al. Dynamics of interfacial electron-transfer processes in colloidal semiconductor systems , 1982 .
[15] A. Henglein. Colloidal TiO2 Catalyzed Photo‐ and Radiation Chemical Processes in Aqueous Solution , 1982 .
[16] H. Gerischer. Electrolytic decomposition and photodecomposition of compound semiconductors in contact with electrolytes , 1978 .
[17] John H. Kennedy,et al. Flatband Potentials and Donor Densities of Polycrystalline α ‐ Fe2 O 3 Determined from Mott‐Schottky Plots , 1978 .
[18] A. Henglein,et al. Mechanism of the Reduction of Lead Ions in Aqueous Solution (a Pulse Radiolysis Study) , 1976 .
[19] R. D. Nasby,et al. Photoassisted electrolysis of water using single crystal α-Fe2O3 anodes , 1976 .
[20] V. Marković,et al. Pulse-radiolysis of glycine and alanine at pH 0–7 , 1974 .
[21] S. Lehoczky,et al. Temperature-dependent electrical properties of HgSe , 1974 .
[22] J. Rabani,et al. THE PULSE RADIOLYSIS OF AQUEOUS SOLUTIONS OF POTASSIUM FERROCYANIDE , 1966 .
[23] G. Döhler,et al. Compositional and doping superlattices in III-V semiconductors , 1983 .
[24] James R. White,et al. Electrochemical investigation of the energetics of particulate titanium dioxide photocatalysts. The methyl viologen-acetate system , 1983 .
[25] G. Nagasubramanian,et al. On the role of surface states in semiconductor electrode photoelectrochemical cells , 1980 .
[26] R. Dingle,et al. Confined carrier quantum states in ultrathin semiconductor heterostructures , 1975 .
[27] Jacques I. Pankove,et al. Optical Processes in Semiconductors , 1971 .