-
极性分子型电流变液是一种新型的电流变材料.其介电颗粒上吸附极性分子,极性分子在颗粒间强局域电场作用下发生取向是产生巨电流变效应的关键.通过对Ca—Ti—O(CTO)体系极性分子型电流变液电流密度的测量发现,其导电行为遵从Poole-Frenkel效应的规律,这是极性分子型电流变液的重要特征之一.而500 ℃处理过的CTO粉体不含极性分子,所配制的电流变液无巨电流变效应,其电流密度随外电场强度近似地呈线性关系,显示出传统电流变液特性.
-
关键词:
- 电流变液 /
- 极性分子 /
- 导电机理 /
- Poole-Frenkel效应
Polar molecule dominated electrorheological (ER) fluid is a new type of ER material with high shear stress. The alignment of polar molecules adsorbed on the dielectric particles in the direction of the high local field between the particles plays a decisive role in such new ER fluids. In measuring the current density of ER fluid composed of Ca—Ti—O particles, it was found that the conductive behavior of the fluid exhibits Poole-Frenkel character, which is one of the particular features for polar molecule dominated electrorheological fluids. By heating the Ca—Ti—O particles at 500 ℃ to remove the polar molecules adsorbed on the particles, however, the current density of ER fluid fabricated with pure Ca—Ti—O particles has linear dependence on the electric field approximately, same as in the traditional ER fluids.-
Keywords:
- electrorheological fluids /
- polar molecule /
- conduction mechanism /
- Poole-Frenkel
[1] Winslow W M 1949 J. Appl. Phys. 20 1137
[2] Klass D L, Martinek T W 1967 J. Appl. Phys. 38 67
[3] Stangroom J E, Harness I 1987 Patent GB 2 153 372
[4] Block H, Kelly J P 1988 Patent GB 2 170 510
[5] Block H, Kelly J P 1996 Eurpean Patent EP 191 585
[6] Ma H R, Wen W J, Tam W Y, Shen P 1996 Phys. Rev. Lett. 77 2499
[7] Zhang Y L, Lu K Q, Rao G H, Tian Y, Zhang S H, Liang J K 2002 Appl. Phys. Lett. 80 888
[8] Wen W J, Huang X X, Yang S H, Lu K Q, Shen P 2003 Nat. Mater. 2 727
[9] Yin J B, Zhao X P 2004 Chem. Phys. Lett. 398 393
[10] Lu K Q, Shen R, Wang X Z, Sun G, Wen W J 2005 Int. J. Mod. Phys. B 19 1065
[11] Shen R, Wang X Z, Wen W J, Lu K Q 2005 Int. J. Mod. Phys. B 19 1104
[12] Wang X Z, Shen R, Wen W J, Lu K Q 2005 Int. J. Mod. Phys. B 19 1110
[13] Wang X Z, Shen R, Wen W J, Lu K Q 2006 J. Funct. Mat. 37 681 (in Chinese) [王学昭、 沈 容、 温维佳、 陆坤权 2006 功能材料 37 681]
[14] Lu K Q, Shen R, Wang X Z, Sun G, Wen W J, Liu J X 2006 Chin. Phys. 15 2476
[15] Wen W J, Men S, Lu K Q 1997 Phys. Rev. E 55 3015
[16] Frenkel J 1938 Phys. Rev. 54 647
[17] Shen P 2005 Int. J. Mod. Phys. B 19 1157
[18] Tao R, Jiang Q, Sim H K 1995 Phys. Rev. E 52 2727
[19] Gonon P, Foulc J N, Atten P, Boissy C 1999 J. Appl. Phys. 86 7160
[20] Davis L C 1997 J. Appl. Phys. 81 1985
-
[1] Winslow W M 1949 J. Appl. Phys. 20 1137
[2] Klass D L, Martinek T W 1967 J. Appl. Phys. 38 67
[3] Stangroom J E, Harness I 1987 Patent GB 2 153 372
[4] Block H, Kelly J P 1988 Patent GB 2 170 510
[5] Block H, Kelly J P 1996 Eurpean Patent EP 191 585
[6] Ma H R, Wen W J, Tam W Y, Shen P 1996 Phys. Rev. Lett. 77 2499
[7] Zhang Y L, Lu K Q, Rao G H, Tian Y, Zhang S H, Liang J K 2002 Appl. Phys. Lett. 80 888
[8] Wen W J, Huang X X, Yang S H, Lu K Q, Shen P 2003 Nat. Mater. 2 727
[9] Yin J B, Zhao X P 2004 Chem. Phys. Lett. 398 393
[10] Lu K Q, Shen R, Wang X Z, Sun G, Wen W J 2005 Int. J. Mod. Phys. B 19 1065
[11] Shen R, Wang X Z, Wen W J, Lu K Q 2005 Int. J. Mod. Phys. B 19 1104
[12] Wang X Z, Shen R, Wen W J, Lu K Q 2005 Int. J. Mod. Phys. B 19 1110
[13] Wang X Z, Shen R, Wen W J, Lu K Q 2006 J. Funct. Mat. 37 681 (in Chinese) [王学昭、 沈 容、 温维佳、 陆坤权 2006 功能材料 37 681]
[14] Lu K Q, Shen R, Wang X Z, Sun G, Wen W J, Liu J X 2006 Chin. Phys. 15 2476
[15] Wen W J, Men S, Lu K Q 1997 Phys. Rev. E 55 3015
[16] Frenkel J 1938 Phys. Rev. 54 647
[17] Shen P 2005 Int. J. Mod. Phys. B 19 1157
[18] Tao R, Jiang Q, Sim H K 1995 Phys. Rev. E 52 2727
[19] Gonon P, Foulc J N, Atten P, Boissy C 1999 J. Appl. Phys. 86 7160
[20] Davis L C 1997 J. Appl. Phys. 81 1985
计量
- 文章访问数: 9517
- PDF下载量: 687
- 被引次数: 0