CONDENSED MATTER: STRUCTURAL, MECHANICAL, AND THERMAL PROPERTIES |
Prev
Next
|
|
|
Solving the initial condition of the string relaxation equation of the string model for glass transition: part-II |
Zhang Jin-Lu(张晋鲁)a) b)†, Wang Li-Na(王丽娜)a), Zhao Xing-Yu(赵兴宇)a), Zhang Li-Li(张丽丽)a), Zhou Heng-Wei(周恒为) a) b), Wei Lai(卫来)a), and Huang Yi-Neng(黄以能)a) b)‡ vglue5pt |
a Department of Physics and National Lab of Solid State Microstructures, Nanjing University, Nanjing 210093, China; b Key Lab of Phase-transitions and Microstructures of Condensed Matters in Xinjiang, Yili Normal University, Yining 835000, China |
|
|
Abstract The string model for the glass transition can quantitatively describe the universal $\alpha$-relaxation in glassformers. The string relaxation equation (SRE) of the model simplifies the well-known Debye and Rouse–Zimm relaxation equations at high and low enough temperatures, respectively. However, its initial condition, necessary to the further model predictions of glassy dynamics, has not been solved. In this paper, the general initial condition of the SRE for stochastically spatially configurative strings is solved exactly based on the obtained special initial condition of the SRE for straight strings in a previous paper (J. L. Zhang et al. 2010 Chin. Phys. B 19, 056403).
|
Received: 25 January 2010
Revised: 30 July 2010
Accepted manuscript online:
|
PACS:
|
64.70.qd
|
(Thermodynamics and statistical mechanics)
|
|
77.22.Gm
|
(Dielectric loss and relaxation)
|
|
76.20.+q
|
(General theory of resonances and relaxations)
|
|
64.60.De
|
(Statistical mechanics of model systems (Ising model, Potts model, field-theory models, Monte Carlo techniques, etc.))
|
|
Fund: Project supported by the National Natural Science Foundations of China (Grant Nos. 10774064 and 30860076), the Key Foundation of Xinjiang Education Department (Grant No. XJEDU2007137) and the Natural Science Foundations of Xinjiang Science and Technology Department (Grant Nos. 200821104 and 200821184). |
Cite this article:
Zhang Jin-Lu(张晋鲁), Wang Li-Na(王丽娜), Zhao Xing-Yu(赵兴宇), Zhang Li-Li(张丽丽), Zhou Heng-Wei(周恒为), Wei Lai(卫来), and Huang Yi-Neng(黄以能) vgluept Solving the initial condition of the string relaxation equation of the string model for glass transition: part-II 2011 Chin. Phys. B 20 026401
|
[1] |
Angell C A 1995 Science267 1924
|
[2] |
Stillinger F H 1995 Science267 1935
|
[3] |
Liu Y H G, Wang R J, Zhao D Q, Pan M X and Wang W H 2007 Science315 1385
|
[4] |
Zhao Z F, Wen P, Sheck C H and Wang W H 2007 Phys. Rev. B75 174201
|
[5] |
Ediger M D, Angell C A and Nagel S R 1996 J. Phys. Chem.100 13200
|
[6] |
Debenedetti P G and Stillinger F H 2001 Nature418 259
|
[7] |
Donth E 2001 The Glass Transition (Berlin: Springer)
|
[8] |
Turnbull D 1949 Contem. Phys. 10 473
|
[9] |
Cohen M H and Grest G S 1979 Phys. Rev. B 20 1077
|
[10] |
Adam G and Gibbs J H 1965 J. Chem. Phys.43 139
|
[11] |
Ngai K L 1979 Comm. Sol. Stat. Phys.9 127, 149
|
[12] |
Das S P 2004 Rev. Mod. Phys.76 785
|
[13] |
Ritort F and Sollich P 2003 Adv. Phys. 52 219
|
[14] |
Kivelson D, Kivelson S A, Zhao X, Nussinov Z and Tarjus G 1995 Physica A219 27
|
[15] |
Chamberlin R V 1995 Phys. Rev. Lett.82 2520
|
[16] |
Anderson P W 1995 Science267 1615
|
[17] |
Lunkenheimer P, Schneider U, Brand R and Loidl A 2000 Contemp. Phys.41 15
|
[18] |
Brand R, Lunkenheimer P and Loidl A 2002 J. Chem. Phys.116 10386
|
[19] |
Lunkenheimer P and Loidl A 2006 J. Non-Cryst. Solids352 4556
|
[20] |
Huang Y N, Wang C J and Riande E 2005 J. Chem. Phys.122 144502
|
[21] |
Huang Y N, Zhang J L and Ying X N 2006 Prog. Phys.26 359 (an invited talk in Chinese) bibitem22 Huang Y N 2006 J. Yili Normal Univ.3 39 (a review in Chinese)
|
[23] |
Böttcher C F J and Bordewijk P 1978 Theory of Electric Polarization (Amsterdam: Elsevier) Vol. II
|
[24] |
Yin Z W 2003 Dielectrics Physics (Beijing: Science Press)
|
[25] |
Weeks E R, Crocker J C, Levitt A C, Schofield A and Weitz D A 2000 Science287 627
|
[26] |
Pouligny B, Malzbender R, Ryan P and Clark N A 1990 Phys. Rev. B42 988
|
[27] |
Glotzer S C 2000 J. Non-Cryst. Solids 274 342
|
[28] |
Chen Z H, Liu L J, Zhang B, Xi Y, Wang Q and Zu F Q 2004 Acta Phys. Sin.53 3839 (in Chinese)
|
[29] |
Dong Z G, Shen M R, Xu R, Gan Z Q and Ge S B 2002 Acta Phys. Sin.51 2896 (in Chinese)
|
[30] |
Shao S F, Zheng P, Zhang J L, Niu X K, Wang C L and Zhong W L 2006 Acta Phys. Sin.55 6661 (in Chinese)
|
[31] |
Li J D, Deng R Z, Chen M and Zheng F 1997 Acta Phys. Sin.46 155 (in Chinese)
|
[32] |
Liu P, He Y, Li J, Zhu G Q and Bian X B 2007 Acta Phys. Sin.56 5489 (in Chinese)
|
[33] |
Chen M, Li J D, Li X Q and Fu D S 1994 Acta Phys. Sin.43 1029 (in Chinese)
|
[34] |
Li J D, Li J B and Fu S L 1993 Acta Phys. Sin.42 674 (in Chinese)
|
[35] |
Zhao M L, Zhong W L, Wang C L, Wang J F and Zhang P L 2002 Acta Phys. Sin.51 1856 (in Chinese)
|
[36] |
Li S T, Cheng P F, Zhao L and Li J Y 2009 Acta Phys. Sin.58 523 (in Chinese)
|
[37] |
Li J D, Cao W Q, Liu J D and Xiao Z M 1998 Acta Phys. Sin.47 1548 (in Chinese)
|
[38] |
Li J D, Li J B, Fu S L and Shen W B 1992 Acta Phys. Sin.41 155 (in Chinese)
|
[39] |
Zhao S C, Li G R, Zhang L N, Wang T B and Ding A L 2006 Acta Phys. Sin.55 3711 (in Chinese)
|
[40] |
Qiu Z Y, Pan S, Hu L, Liu X and Zhou L W 1997 Acta Phys. Sin.46 314 (in Chinese)
|
[41] |
Jiang X P, Fang J W, Zeng H R, Pan X M, Chen D R and Yin Q R 2000 Acta Phys. Sin.49 802 (in Chinese)
|
[42] |
Li J D, Cao W Q, Li X Q and Fu D S 1996 Acta Phys. Sin.45 1225 (in Chinese)
|
[43] |
Zhao M L, Wang C L, Zhong W L, Zhang P L and Wang J F 2002 Acta Phys. Sin.51 420 (in Chinese)
|
[44] |
Zhao M L, Yi X J, Wang C L, Wang J F and Zhang J L 2006 Chin. Phys. 15 1611
|
[45] |
Wen C 1995 Chin. Phys.4 54
|
[46] |
Zhao H P, Liu Z Y and Liu Y Y 2001 Chin. Phys. 10 35
|
[47] |
Wang X J, Gong Z Q, Qian Y F, Zhu J and Chen X B 2007 Chin. Phys.16 2131
|
[48] |
Wang Q, Qiang J B, Wang Y M, Xia J H, Lin Z, Zhang X F and Dong C 2006 Acta Phys. Sin.55 378 (in Chinese)
|
[49] |
Zhang H T, Liu R S and Hou Z 2006 Acta Phys. Sin.55 2409 (in Chinese)
|
[50] |
Zhou H W, Zhang J L, Huang Y N, Ying X N, Zhang L, Wu W H and Shen Y F 2007 Acta Phys. Sin.56 6547 (in Chinese)
|
[51] |
Wang Z Y, Yang Y S, Tong W H, Li H Q and Hu Z L 2007 Acta Phys. Sin.56 1543 (in Chinese)
|
[52] |
Yi X H, Liu R S, Tian Z A, Hou Z Y, Wang X and Zhou Q Y 2006 Acta Phys. Sin.55 5386 (in Chinese)
|
[53] |
Zhu K J, Qin X K, Chen H and Wu X 1993 Acta Phys. Sin.42 1612 (in Chinese)
|
[54] |
Xia M X, Meng Q G, Zhang S G, Ma C L and Li J G 2006 Acta Phys. Sin.55 6543 (in Chinese)
|
[55] |
Yu P, Bai H Y, Tang M B, Wang W L and Wang W H 2005 Acta Phys. Sin.54 3284 (in Chinese)
|
[56] |
Hou Z Y, Liu R S, Li C S, Zhou Q Y and Zheng C X 2005 Acta Phys. Sin.54 5723 (in Chinese)
|
[57] |
Zhang L L, Zhang J L, Jiang J G, Zhou H W and Huang Y N 2008 Acta Phys. Sin.57 5817 (in Chinese)
|
[58] |
Wei H Q, Long Z L, Zhang Z C, Li X A, Peng J and Zhang P 2009 Acta Phys. Sin.58 2556 (in Chinese)
|
[59] |
Hou Z Y, Liu R S, Wang X, Tian Z A, Zhou Q Y and Chen Z H 2007 Acta Phys. Sin.56 376 (in Chinese)
|
[60] |
Li J, Zhang Y and Zhang S C 1996 Acta Phys. Sin.45 1359 (in Chinese)
|
[61] |
Chen X H, Peng J C, Chen K Q and Chen Z C 1998 Acta Phys. Sin.47 672 (in Chinese)
|
[62] |
Zhao J Z, Liu J, Zhao Y and Hu Z Q 2007 Acta Phys. Sin.56 443 (in Chinese)
|
[63] |
Cheng Z Y, Yao X and Zhang L Y 1996 Acta Phys. Sin.45 1026 (in Chinese)
|
[64] |
Zhao Z F, Zhang Z, Li Z, Wei P, Zhao D Q, Pan M X, Wang W L and Wang W H 2004 Acta Phys. Sin.53 850 (in Chinese)
|
[65] |
Vogel H 1921 Phys. Z.22 645
|
[66] |
Fulcher G S 1925 J. Am. Ceram. Soc.8 339
|
[67] |
Tammann G and Hesse W 1926 Z. Anorg. Allg. Chem.156 245
|
[68] |
Kohlrausch R 1874 Ann. Phys. Chem. (Leipzig)91 179
|
[69] |
Williams G and Watts D C 1970 Trans. Faraday Soc.66 80
|
[70] |
Davidson D W and Cole R H 1950 J. Chem. Phys. 18 1417
|
[71] |
Rouse P E 1953 J. Chem. Phys.21 1273
|
[72] |
Zimm B 1956 J. Chem. Phys. 24 269
|
[73] |
Zhang J L, Wang L N, Zhou H W, Zhang L L, Zhao X Y and Huang Y N 2010 Chin. Phys. B 19 056403
|
[74] |
Zallen R, 1988 Physics of Non-crystalline Solids, translated by Huang Y (Beijing: Peking University Press)(in Chinese)
|
[75] |
Jiang J G, Zhang J L, Zhou H W, Zhang L L and Huang Y N 2009 Acta Phys. Sin.58 5993 (in Chinese)
|
[76] |
Zhang J L, Jiang J G, Jiang X G and Huang Y N 2007 Acta Phys. Sin. 56 5088 (in Chinese)
|
[77] |
Onsager L 1936 JACS58 1486.
|
[78] |
Fröhlich H 1958 Theory of Dielectrics 2nd edn. (Oxford: University Press) endfootnotesize
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
Altmetric
|
blogs
Facebook pages
Wikipedia page
Google+ users
|
Online attention
Altmetric calculates a score based on the online attention an article receives. Each coloured thread in the circle represents a different type of online attention. The number in the centre is the Altmetric score. Social media and mainstream news media are the main sources that calculate the score. Reference managers such as Mendeley are also tracked but do not contribute to the score. Older articles often score higher because they have had more time to get noticed. To account for this, Altmetric has included the context data for other articles of a similar age.
View more on Altmetrics
|
|
|