The Theoretical Analysis of the Curve of Photoconductivity vs. Irradiation Time (1) The Derivation of Theoretical Equation and its Solution

The theoretical equation on variation of electric conductivity of ionic crystal with irradiation time was derived by assuming interaction of electron (or positive hole) and interstitial silver ion (or vacancy). This equation is non-linear equation containing five factors such as number of electro-co...

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Published inThe Journal of The Society of Scientific Photography of Japan Vol. 26; no. 3; pp. 109 - 115
Main Author SUZUKI, Shin
Format Journal Article
LanguageJapanese
Published THE SOCIETY OF PHOTOGRAPHY AND IMAGING OF JAPAN 25.12.1963
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ISSN1884-6327
DOI10.11454/photogrst1934.26.3_109

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Abstract The theoretical equation on variation of electric conductivity of ionic crystal with irradiation time was derived by assuming interaction of electron (or positive hole) and interstitial silver ion (or vacancy). This equation is non-linear equation containing five factors such as number of electro-conductive lattice defect (A), number of photon (C), and reaction rate constant (K1, K2, K3). The equation can be solved by numerous integration, if initial condition was given. As example, the solution was shown. In the case where A, C, and Ki (i=1-3) are respectively 1014, 1016, and 10-8. This theoretical results were agreed with the experimental results.
AbstractList The theoretical equation on variation of electric conductivity of ionic crystal with irradiation time was derived by assuming interaction of electron (or positive hole) and interstitial silver ion (or vacancy). This equation is non-linear equation containing five factors such as number of electro-conductive lattice defect (A), number of photon (C), and reaction rate constant (K1, K2, K3). The equation can be solved by numerous integration, if initial condition was given. As example, the solution was shown. In the case where A, C, and Ki (i=1-3) are respectively 1014, 1016, and 10-8. This theoretical results were agreed with the experimental results.
Author SUZUKI, Shin
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References 6) W. Koch, C. Wagner: Z. phys., Chem., B, 38, 295 (1937
7) S. Glasston, K. J. Laidler, H. Eyring: The Theory of Rate Processes, McGraw-Hill Book Co., New York, Chap I (1941
5) N. F. Mott, R. W. Gurney: Electronic Processes in Ionic Crystals, Oxford University Press, London (1940
2) 鈴木伸: 電子写真
1) 鈴木伸: 工化
3) R. C. Herman, C. E. Meyer: J. Appl. Phys., 17, 743 (1946
4) R. C. Herman, C. E. Meyer, H. S. Hopfield: J. Opt. Soc. Am., 38, 999 (1948
References_xml – reference: 2) 鈴木伸: 電子写真
– reference: 4) R. C. Herman, C. E. Meyer, H. S. Hopfield: J. Opt. Soc. Am., 38, 999 (1948)
– reference: 3) R. C. Herman, C. E. Meyer: J. Appl. Phys., 17, 743 (1946)
– reference: 5) N. F. Mott, R. W. Gurney: Electronic Processes in Ionic Crystals, Oxford University Press, London (1940)
– reference: 6) W. Koch, C. Wagner: Z. phys., Chem., B, 38, 295 (1937)
– reference: 7) S. Glasston, K. J. Laidler, H. Eyring: The Theory of Rate Processes, McGraw-Hill Book Co., New York, Chap I (1941)
– reference: 1) 鈴木伸: 工化
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Subtitle The Derivation of Theoretical Equation and its Solution
Title The Theoretical Analysis of the Curve of Photoconductivity vs. Irradiation Time (1)
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