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Original Articles

Atomic mechanisms for the transport of charge by dislocations in nacl type crystals

Pages 83-90 | Received 08 Jul 1964, Published online: 02 Sep 2006

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (9)

R.W. Whitworth. (1985) The sweep-up model of charged dislocations in ionic crystals. Philosophical Magazine A 51:6, pages 857-863.
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A. Huddart & R.W. Whitworth. (1973) Measurements of the charge acquired by dislocations in NaCl crystals of known purity. The Philosophical Magazine: A Journal of Theoretical Experimental and Applied Physics 27:1, pages 107-119.
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R.M. Turner & R.W. Whitworth. (1970) Pick-up and loss of charge from dislocations in Mn++-doped sodium chloride crystals. The Philosophical Magazine: A Journal of Theoretical Experimental and Applied Physics 21:174, pages 1187-1192.
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K.M. Turner & R.W. Whitworth. (1968) Movement of dislocations in sodium chloride crystals in an electric field. The Philosophical Magazine: A Journal of Theoretical Experimental and Applied Physics 18:153, pages 531-538.
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R.W. Whitworth. (1968) Theory of the thermal equilibrium charge on edge dislocations in alkali halide crystals. The Philosophical Magazine: A Journal of Theoretical Experimental and Applied Physics 17:150, pages 1207-1221.
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A. R. C. Westwood, D.L. Goldheim & R.G. Lye. (1967) Rebinder effects in MgO. The Philosophical Magazine: A Journal of Theoretical Experimental and Applied Physics 16:141, pages 505-519.
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R.A. Stuart & R.W. Whitworth. (1967) Potential differences produced in sodium chloride crystals by plastic deformation at 4·2°K. The Philosophical Magazine: A Journal of Theoretical Experimental and Applied Physics 15:137, pages 1057-1058.
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R.W. Whitworth. (1967) A measurement of the charge on edge dislocations in a sodium chloride crystal. The Philosophical Magazine: A Journal of Theoretical Experimental and Applied Physics 15:134, pages 305-319.
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Articles from other publishers (10)

O. V. Charkina. (2001) Electromagnetic Emission of Mobile Dislocation Segments in an Ionic Crystal. Physics of the Solid State 43:10, pages 1898.
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V.L. INDENBOM & Z.K. SARALIDZE. 1992. Elastic Strain Fields and Dislocation Mobility. Elastic Strain Fields and Dislocation Mobility 571 624 .
E. Nadgornyi. (1988) Dislocation dynamics and mechanical properties of crystals. Progress in Materials Science 31, pages 1-530.
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K. Vacek. (1971) Some remarks on photoluminescence of AgCl crystals excited by laser or after deformation. Czechoslovak Journal of Physics 21:3, pages 303-308.
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J. L. Kiss, J. Sarkozi & L. Vannay. (2006) The Changes in the Microhardness and in the Charge of Dislocation of Quenched NaCl Monocrystals. physica status solidi (b) 43:2.
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J. Y. Wong, R. K. Linde & R. M. White. (1969) Electrical Signals in Dynamically Stressed Ionic Crystals: A Dislocation Model. Journal of Applied Physics 40:10, pages 4137-4145.
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William A. Brantley & Charles L. Bauer. (1969) Effect of charged dislocations on dielectric, piezoelectric and elastic properties. Materials Science and Engineering 4:1, pages 29-38.
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J. Kiss. (1968) Recent data on the nature of the Gyulai—Hartly effectМатериалы о природе эффекта дьюлаи-хартли. Acta Physica Academiae Scientiarum Hungaricae 24:2-3, pages 241-253.
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R.J. SchwensfeirJr.Jr. & C. Elbaum. (1967) Electric charge on dislocation arrays in sodium chloride. Journal of Physics and Chemistry of Solids 28:4, pages 597-606.
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W. A. Brantley & Ch. L. Bauer. (2006) The geometry of charged dislocations in the NaCl structure. physica status solidi (b) 18:1, pages 465-478.
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