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Ehrenreich H., Spaepen F. — Solid State Physics.Volume 55.
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Название: Solid State Physics.Volume 55.
Авторы: Ehrenreich H., Spaepen F.
Аннотация: The present volume deals with four diverse areas of considerable interest and importance: organic electronic device physics, charge density waves in nanocrystals, shape memory alloys, and grain growth of cellular structures.
First part presents a comprehensive survey of the basic physics underlying organic electronic devices, in particular, the most studied examples of light-emitting diodes (LEDs) and field-effect
transistors. This exciting new area is rapidly unfolding in some ways, as the authors point out, analogously to the early development of inorganic semiconductor devices.
The second part describes the formation of charge density waves (CDWs) in 2D nanostructures, in particular, transition metal dichalcogenides (TMDs).
The third part is devoted to the vibrational propertles of shape-memory alloys. The shape-memory effect in certain metallic alloys is made possible by a reversible martensitic transformation. Shape-memory alloys have several technological applications, from safety valves to, most recently, micro-electromechanical systems (MEMS).
The last part reviews our understanding of the evolution of materials that are divided up into cells by internal surfaces, such as polycrystals or foams. The evolution is a type of coarsening, driven by a
continuous decrease in the total interfacial area. In polycrystals the phenomenon is known as grain growth.
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Рубрика: Физика /
Статус предметного указателя: Готов указатель с номерами страниц
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Год издания: 2001
Количество страниц: 349
Добавлена в каталог: 22.02.2015
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Предметный указатель
Enomoto, N. 312(108)
Enomoto, Y. 288(51)
Entropy, martensitic transition of shape-memory alloys and 217—221
Epstein, A.J. 7(47) 105(206—207)
Eriksson, O. 160(4)
Eshelby, J.D. 246(214)
Etemad, S. 18(82) 20(106 108—109)
Euler's theorem, three-dimensional cellular structures 307
Euler's theorem, two-dimensional cellular structures 273—274
Fahlman, M. 23(120)
Falk, F. 237(203)
Falter, C. 206(143)
Fan, D. 286(38—39) 291
Farinelli, M. 255
Fauquet, C. 23(120)
Fayad, W. 281(24) 291 294
Fayad, Walid 314
Feldman, L.C. 5(40)
Feltman, P. 312
Feng, Y. 4(27)
Fermi surface nesting, nanocrystals 143—148
Ferraris, J.P. 8(52) 12(75) 19(88 102) 26(128 130) 32(133) 38(136) 49(146—147) 54(150) 55(163) 88(198) 106(211)
Ferraris, John 117
Ferromagnetic shape-memory alloys 161 252—265
Fichou, D. 10(70—71)
Fidt, R.F. 157(76)
Field-effect transistors (FETs), organic 2—4
Field-effect transistors (FETs), organic, device model 108—113
Field-effect transistors (FETs), organic, device structure 9—10
Field-effect transistors (FETs), organic, electronic transport properties 55—56
Filas, R.W. 115(229)
Finlayson, T. 180
Fleischmann, P. 173(48)
Floro, J.A. 289(58) 297(82)
Flyvberg, H. 286(32) 287
Flyvbjerg, H. 286 286(32) 287
Forrest, S.R. 2(6) 3(12 17 19—21) 7(43) 8(48) 9(53 54—56) 55(154) 115(218 227—228)
Fradkov, V.E. 284 284(29) 285 285(30) 286 295 295(72) 296 296(73—77) 308
Frank, A.J. 57(167)
Fredriksson, C. 23(119 121)
Freeman, A.J. 129(40)
Freeman, P. 178(71)
Frick, B. 223(176)
Friedel, J. 225(181) 265 265(258)
Friend, C.M. 171 221(169)
Friend, R.H. 2(2) 3(13) 4(22—24 35) 7(44—45) 9(63—64 67) 19(104—105) 84(197) 105(208) 115(214—217)
Frindt, R.F. 150(65)
Fritsch, G. 257(244)
Fritz, T.C. 187 187(98)
Frolov, S.V. 115(220—221)
Front-tracking technique, grain growth in polycrystalline materials 288
Frontera, C. 267
Frost, H.J. 281(24) 282 282(26) 288(40—41 43—44) 297(83) 302(85) 303(86) 305(94)
Froth, evolution 289 290—292
Froyer, G. 57(166)
Fu, D.K. 105(206—207)
Fuchizaki, K. 205(138) 244(210) 245(211) 310 310(105—106)
Fuji, Y. 177(66)
Fujii, S. 264(257)
Fujii, T. 47(144)
Fujii, Y. 231(189)
Fujita, F. 178(73—74)
Fujita, M. 47(144)
Fullman, R.L. 288 288(50)
Funahashi, S. 205(138)
Funatsu, Y. 197(118)
Fung, A.W.P. 10(68)
Galvao, D.S. 20(107—109)
Gamier, F. 4(28) 10(69—71)
Gammel, J.T. 288(49)
Gammie, G. 123(18)
Ganz, E. 123(17)
Gao, J. 9(59) 26(129) 115(223—224)
Gao, Y. 84(196)
Garbuzov, D.Z. 7(43) 8(48)
Gartstein, Y.N. 19(93 100—101) 68 68(176) 78(193)
Gastaldi, J. 248(220—221)
Gaussian disorder model (GDM), carrier mobility 67—68
Gebler, D.D. 105(206—207)
Gelinck, G.H. 7(44)
Gelius, U. 23(118)
Geng, C. 286(39)
George, D.C. 288(49)
Gherman, B. 19(95)
Giambattista, B. 123(16)
Giebeler, C. 98(201)
Gielen, L. 121(5)
Giersig, M. 143(53)
Gilat, G. 199
Gill, S.P.A. 288(42) 291
Gill, W.D. 66(173)
Gimzewski, J.K. 124(27) 125(31)
Glaser, R. 57(165)
Glavao, D.S. 18(82)
Glazier, J.A. 278(17) 279 290 290(62) 293(67) 306(97) 307 307(99) 308 308(101) 313 313(114)
Glicksman, M.E. 296(73—74 76—77)
Glundlach, D.J. 4(30)
Gntherodt, H.-J. 131(43)
Gobin, P.F. 197(120) 200(130) 203(134) 209(145) 213 213(156) 246(215) 248 248(222)
Goicoechea, J. 174(55)
Gold alloys, martensitic transition 170 194 201
Gomanaj, E.V. 264(255)
Gonzalez-Comas, A. 191 197(121) 198 210(151) 211 212(154—155) 214 216 216(159) 232(190) 250 257(246) 258(247) 259 260(250 252) 267
Gooding, R.J. 196(113—114) 210(147—148) 227 227(182) 234(197) 238 243 244(206) 251(226)
Graeme-Barber, A. 178(71)
Graham, S.C. 19(104)
Grain growth, alloy additions 304—305
Grain growth, Burke — Tumbull model 270—271
Grain growth, films 293—304
Grain growth, foils 293—296
Grain growth, mean field models 279—286 306
Grain growth, normal/abnormal 270
Grain growth, polycrystalline materials 270 313—314
Grain growth, simulations 286—290
Grain growth, three-dimensional systems 305—313
Grain growth, two-dimensional systems 271—279 290—293
Grain rotation, in thin films 304
Grange, G. 248(220—221)
Granstrom, M. 9(64)
Graupner, W. 57(165) 115(219)
Greenham, N.C. 2(2) 7(45)
Grell, M. 56(164)
Grest, G.S. 286(36—37) 306(97) 308(102)
Grice, A. 56(164)
Griffiths, R.B. 227(184)
Griineisen parameters, shape-memory alloys 187—188 210—216
Grimvall, G. 160(3) 221(171)
Grohlich, H. 143(54)
Groza, J.R. 303(90)
Grubbs, R.H. 3(16) 98(202)
Gruner, G. 122(11)
Gruner, J. 6(41) 7(44)
Gu, G. 2(6) 3(12) 8(48) 9(53 55—56)
Guenin, G. 173(41—42) 174(57) 191 193(107—108) 194 197(119—121) 198 200(130) 203(134) 206 209 209(145) 212(152) 213 213(156) 232(191) 246(215) 248 248(220—222) 249(223) 250(224) 251 267
Guha, S. 57(165)
Guilat, G. 199(123)
Gundlach, D.J. 5(37)
Gupta, R. 115(214)
Gustafson, T.L. 7(47)
Guthoff, F. 200(128)
Gymer, R.W. 3(13)
Haasen, P. 160(6)
Hagler, T.W. 19(88) 26(130) 32(133)
Hagler, Thomas 117
Haight, R. 47(145)
Hajlaoui, M. 77(186)
Hajlaoui, R. 4(28) 10(69—70) 77(186)
Halls, J.J.M. 9(63)
Halperin, B.I. 177 177(63)
Hamada, Y. 47(144)
Hamaguchi, M. 19(90)
Han, W. 150(65)
Hanamura, E. 142(51)
Hansam, P.K. 123(16)
Harmon, B.N. 177(62) 210(146) 235(200) 244(206)
Harris, K.E. 304 304(91)
Harrison, M.G. 6(41)
Harrison, N.T. 115(216)
Hart, C.M. 4(29)
Hasegawa, T. 148(61)
Hassen, P. 181(87)
Hatch, D.M. 244(207—208)
Hatherly, M. 293(69)
Hattink, B.J. 260(252)
Hausch, G. 193(106)
Hautecler, S. 200(130)
Hawthorne, A.M. 210(148)
Hayashi, Y. 303(86) 305(94)
Hayes, G.R. 7(45)
Healy, E.F. 15(77)
Heckelmann, I. 280(19) 289(56)
Heeger, A.J. 2(1) 5(36) 9(59 62) 19(103) 25(125—126) 26(129) 38(137—138) 55(162) 115(212 213—214 222—224)
Heike, S. 156(72)
Heiming, A. 179(81) 200(126—128)
Heller, C.M. 26(130) 38(136)
Heller, Christian 117
Hennion, B. 200(128) 205(139)
Hergenrother, J.M. 121(6)
Hertel, D. 67(175)
Herzig, C. 200(127)
Herzing, C. 179(81) 200(128)
Hess, H.F. 155(68—69)
Heuer, A.H. 178(70)
Heusler alloys 253
Hide, F. 55(162) 115(212—214)
Higgins, G.T. 313(109)
Hill, I.G. 41(140) 105(205)
Hillert's model, grain growth in polycrystalline materials 280—282 306
Hillert, M. 280 280(18) 281 282 306 313
Hilliard, J.E. 251 251(227)
Hirata, K. 253(232)
Ho, K.-M. 210(146)
Ho, K.M. 205(137) 235(200) 244(206)
Holm, E.A. 306(97)
Holmes, A.B. 3(13) 4(35) 7(45) 9(63 67) 40(139)
Holworth, M.L. 293(68)
Holzer, L. 115(224—225)
Holzer, W. 8(51)
Hooke's law 181 183
Horhold, H.H. 9(65) 67(175) 105(209)
Hori, F. 171(37)
Horovitz, B. 163(14)
Horowitz, G. 3(9) 4(28) 10(69—71) 77(186)
Hoshino, S. 200(129)
Howe, C.L. 288(40)
Hsieh, B.R. 84(196)
Hu, Y. 41(140)
Huang diffuse scattering 177
Huang, C.M. 177(64)
Huang, H. 157(77)
Huang, J.-L. 157
Huang, J.K. 255 256(239)
Huang, J.L. 124(23)
Huang, K. 160(1)
Hubacek, J.S. 123(18)
Huber, A. 7(46)
Hueschen, M. 3(10)
Hull, G.W.Jr. 157(76)
Humphreys, F.J. 293(69)
Hunderi, O. 283 283(27) 289(54—55)
Hung, L.S. 9(60) 98(199)
Hunt, E.R. 150(65)
Hybrid models, grain growth in polycrystalline materials 283
Ibe, G. 295(70)
Iglesis, J.R. 286 286(34) 287
Iizumi, M. 209(144)
Iizumi, Y. 3(15)
Inbasekaran, M. 54(151—152)
Ishada, K. 306(96)
Ishida, S. 264(257)
Jabbour, G.E. 3(16)
Jackson, T.N. 4(30) 5(37)
Jacobs, S.J. 60(169)
James, R.D. 253(233)
Jannssen, R.A.J. 4(24)
Jeglinski, S. 19(89)
Jeglinski, S.A. 24(122)
Jessen, S.W. 105(206)
Jesspen, C. 286 286(32)
Jiran, E. 303(88—89)
Joachim, C. 124(27) 125(31)
Joensen, P. 157(76)
Johansson, A. 23(118)
Johnson, A. 123(16)
Jonckheere, R. 121(5)
Jones, R. 178(71)
Jordan, R.H. 9(57)
Josephson, A.C. 122(10)
Joswick, M.D. 12(75) 32(133) 102(203)
Joswick, Michael 117
Jourdan, C. 248(220—221)
Jung, T.A. 125(31)
Jurado, M. 193(110) 194 207
Jurado, M.A. 210(149) 211 231(185) 232(190) 267
Kachi, S. 171(36)
Kaerijama, K. 23(120)
Kahn, A. 41(140) 44(143) 105(205)
Kajitani, T. 200(129)
Kajiwara, S. 168(28)
Kakeshita, T. 253(232)
Kanawa, Y. 178(75)
Kanazaki, H. 142(51)
Kantner, C. 255 256(239)
Karasz, F.E. 5(38)
Karg, S. 9(58)
Kartha, S. 174(51) 179 179(77—79) 180
Kastner, M.A. 120(2)
Katari, J.E.B. 123(21)
Katisikas, L. 143(53)
Kato, H. 171(34) 221(170)
Kato, M. 218(163)
Katz, H.E. 4(27 31) 10(68 72) 77(185) 115(229)
Kauffmann, L. 245(213)
Kawasaki, K. 288(51) 310 310(104—106)
Kelly, M.J. 168(29) 205 205(142) 206
Kempf, A 257(244)
Kenkre, V.M. 68(177—181)
Kent, A.D. 125(34)
Kepler, R.G. 20(109) 60(169)
Kermode, J.P. 289 289(52—53)
Kerr, W.C. 210(148)
Kessener, Y. 7(45)
Kevan, S.D. 148(58)
Khachatruyan, A.G. 246(216—217)
Khalfin, V. 9(54) 9(56)
Khalfin, V.B. 8(48)
Khandros, L.G. 205(141)
Khovailo, V.V. 264(256)
Kido, J. 3(15)
Kim 154
Kim, C.Y. 9(59)
Kim, J. 148(61) 149(63)
Kim, P. 124(23)
Kim, Philip 119
Kinetics, grain growth in polycrystalline materials 271—272
Kinetics, martensitic transition in shape-memory alloys 172—174
King, A.H. 304(91)
Kippelen, B. 3(16) 98(202)
Kirova, N. 18(79—81) 19(86 102)
Kitazawa, K. 148(61)
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