Rheological and Interfacial Properties of Colloidal Electrolytes

Hong-Peng Han Yi-Hu Song Qiang Zheng

Citation:  Hong-Peng Han, Yi-Hu Song, Qiang Zheng. Rheological and Interfacial Properties of Colloidal Electrolytes[J]. Chinese Journal of Polymer Science, 2019, 37(10): 1039-1044. doi: 10.1007/s10118-019-2334-9 shu

Rheological and Interfacial Properties of Colloidal Electrolytes

English


    1. [1]

      Feuillade, G.; Perche, P. Ion-conductive macromolecular gels and membranes for solid lithium cells. J. Appl. Elec. 1975, 5(1), 63-69. doi: 10.1007/BF00625960

    2. [2]

      Baskoro, F.; Wong, H. Q.; Yen, H. J. Strategic structural design of a gel polymer electrolyte toward a high efficiency lithium-ion battery. ACS Appl. Energy Mater. 2019, 2(6), 3937-3971. doi: 10.1021/acsaem.9b00295

    3. [3]

      Liu, K.; Liu, Y. Y.; Lin, D. C.; Pei, A.; Cui, Y. Materials for lithium-ion battery safety. Sci. Adv. 2018, 4(6), eaas9820. doi: 10.1126/sciadv.aas9820

    4. [4]

      Huang, P. F.; Wang, Q. S.; Li, K.; Ping, P.; Sun, J. H. The combustion behavior of large scale lithium titanate battery. Sci. Rep. 2015, 5, 7788-7799. doi: 10.1038/srep07788

    5. [5]

      Lyu, Y. F.; Zhang, Z. J.; Liu, C.; Geng, Z.; Gao, L. C.; Chen, Q. Random binary brush architecture enhances both ionic conductivity and mechanical strength at room temperature. Chinese J. Polym. Sci. 2018, 36(1), 78-84. doi: 10.1007/s10118-018-2016-z

    6. [6]

      Santhosha, A. L.; Bhattacharyya, A. J. A few case studies on the correlation of particle network and its stability on the ionic conductivity of solid-liquid composite electrolytes. J. Phys. Chem. B 2015, 119(33), 11317-11325.

    7. [7]

      Pfaffenhuber, C.; Göbel, M.; Popovic, J.; Maier, J. Soggy-sand electrolytes: status and perspectives. Phys. Chem. Chem. Phys. 2013, 15(42), 18318-18335. doi: 10.1039/c3cp53124d

    8. [8]

      Song, J. Y.; Wang, Y. Y.; Wan, C. C. Review of gel-type polymer electrolytes for lithium-ion batteries. J. Power Sources 1999, 77(2), 183-197. doi: 10.1016/S0378-7753(98)00193-1

    9. [9]

      Lee, Y. S.; Lee, J. H.; Choi, J. A.; Yoon, W. Y.; Kim, D. W. Composite polymer electrolytes: Cycling characteristics of lithium powder polymer batteries assembled with composite gel polymer electrolytes and lithium powder anode. Adv. Funct. Mater. 2013, 23(8), 917-917. doi: 10.1002/adfm.v23.8

    10. [10]

      Fan, J.; Raghavan, S. R.; Yu, X. Y.; Khan, S. A.; Fedkiw, P. S.; Hou, J.; Baker, G. L. Composite polymer electrolytes using surface-modified fumed silicas: Conductivity and rheology. Solid State Ionics 1998, 111(1-2), 117-123. doi: 10.1016/S0167-2738(98)00151-9

    11. [11]

      Khan, S. A.; Fedkiw, P. S.; Baker, G. L. Composite polymer electrolytes using fumed silica fillers: synthesis, rheology and electrochemistry. Office Sci. Tech. Inform. Tech. Rep. 1999, 1, 82-95.

    12. [12]

      Raghavan, S. R.; Riley, M. W.; Fedkiw, P. S.; Khan, S. A. Composite polymer electrolytes based on poly(ethylene glycol) and hydrophobic fumed silica: Dynamic rheology and microstructure. Chem. Mater. 1998, 10(1), 244-251. doi: 10.1021/cm970406j

    13. [13]

      Fan, J.; Fedkiw, P. S. Composite electrolytes prepared from fumed silica, polyethylene oxide oligomers, and lithium salk. J. Electrochem. Soc. 1997, 144(2), 399-408. doi: 10.1149/1.1837423

    14. [14]

      Walls, H. J.; Zhou, J.; Yerian, J. A.; Fedkiw, P. S.; Khan, S. A.; Stowe, M. K.; Baker, G. L. Fumed silica-based composite polymer electrolytes: Synthesis, rheology, and electrochemistry. J. Power Sources 2000, 89(2), 156-162. doi: 10.1016/S0378-7753(00)00424-9

    15. [15]

      Li, Y. X.; Fedkiw, P. S.; Khan, S. A. Lithium/V6O13 cells using silica nanoparticle-based composite electrolyte. Electrochim. Acta 2002, 47(24), 3853-3861. doi: 10.1016/S0013-4686(02)00326-2

    16. [16]

      Liu, K. W.; Cheng, C. F.; Zhou, L. Y.; Zou, F.; Liang, W. F.; Wang, M. Y.; Wang, M. Y.; Zhu, Y. A shear thickening fluid based impact resistant electrolyte for safe Li-ion batteries. J. Power Sources 2019, 423, 297-304. doi: 10.1016/j.jpowsour.2019.03.056

    17. [17]

      Ye, Y. L.; Xiao, H.; Reaves, K.; McCulloch, B.; Mike, J. F.; Lutkenhaus, J. L. Effect of nanorod aspect ratio on shear thickening electrolytes for safety-enhanced batteries. ACS Appl. Nano Mater. 2018, 1(6), 2774-2784. doi: 10.1021/acsanm.8b00457

    18. [18]

      Shen, B. H.; Armstrong, B. L.; Doucet, M.; Heroux, L.; Browning, J. F.; Agamalian, M.; Tenhaeff, W. E.; Veith, G. M. Shear thickening electrolyte built from sterically stabilized colloidal particles. ACS Appl. Mater. Interfaces 2018, 10(11), 9424-9434. doi: 10.1021/acsami.7b19441

    19. [19]

      Veith, G. M.; Armstrong, B. L.; Wang, H.; Kalnaus, S.; Tenhaeff, W. E.; Patterson, M. L. Shear thickening electrolytes for high impact resistant batteries. ACS Energy Lett. 2017, 2(9), 2084-2088. doi: 10.1021/acsenergylett.7b00511

    20. [20]

      Ding, J.; Tian, T. F.; Meng, Q.; Guo, Z. P.; Li, W. H.; Zhang, P.; Ciacchi, F. T.; Huang, J.; Yang, W. R. Smart multifunctional fluids for lithium ion batteries: Enhanced rate performance and intrinsic mechanical protection. Sci. Rep. 2013, 3(8), 2485.

    21. [21]

      Pfaffenhuber, C.; Sörgel, S.; Weichert, K.; Bele, M.; Mundinger, T.; Gobel, M.; Maier, J. In situ recording of particle network formation in liquids by ion conductivity measurements. J. Am. Chem. Soc. 2011, 133(37), 14514-14517. doi: 10.1021/ja205287d

    22. [22]

      Vélez, J. F.; Aparicio, M.; Mosa, J. Effect of lithium salt in nanostructured silica-polyethylene glycol solid electrolytes for Li-ion battery applications. J. Phys. Chem. C 2016, 120(40), 22852-22864. doi: 10.1021/acs.jpcc.6b07181

    23. [23]

      Jarosik, A.; Traub, U.; Maier, J.; Bunde, A. Ion conducting particle networks in liquids: Modeling of network percolation and stability. Phys. Chem. Chem. Phys. 2011, 13(7), 2663-2666. doi: 10.1039/C0CP01870H

    24. [24]

      Das, S. K.; Bhattacharyya, A. J. Oxide particle surface chemistry and ion transport in " soggy sand” electrolytes. J. Phys. Chem. C 2009, 113(16), 6699-6705. doi: 10.1021/jp810761e

    25. [25]

      Zhou, H.; Fedkiw, P. S. Ionic conductivity of composite electrolytes based on oligo(ethylene oxide) and fumed oxides. Solid State Ionics 2004, 166(3), 275-293.

    26. [26]

      Bhattacharyya, A. J.; Maier, J.; Bock, R.; Lange, F. F. New class of soft matter electrolytes obtained via heterogeneous doping: Percolation effects in " soggy sand” electrolytes. Solid State Ionics 2004, 177(26), 2565-2568.

    27. [27]

      Bhattacharyya, A. J.; Maier, J. Second phase effects on the conductivity of non-aqueous salt solutions: "Soggy sand electrolytes". Adv. Mater. 2004, 16(9-10), 811-814.

    28. [28]

      Kumar, B.; Rodrigues, S. J. Ionic conductivity of colloidal electrolytes. Solid State Ionics 2004, 167(1), 91-97.

    29. [29]

      Zhang, Q. X.; Wu, C.; Song, H.; Zheng, Q. Rheology of fumed silica/polypropylene glycol dispersions. Polymer 2018, 148, 400-406. doi: 10.1016/j.polymer.2018.06.051

    30. [30]

      Zheng, Z.; Song, Y.; Yang, R.; Zheng, Q. Direct evidence for percolation of immobilized polymer layer around nanoparticles accounting for sol-gel transition in fumed silica dispersions. Langmuir 2015, 31(50), 13478-13487. doi: 10.1021/acs.langmuir.5b03899

    31. [31]

      Zheng, Z.; Song, Y.; Xu, H.; Zheng Q. Thickening of the immobilized polymer layer using trace amount of amine and its role in promoting gelation of colloidal nanocomposites. Macromolecules 2015, 48(24), 9015-9023. doi: 10.1021/acs.macromol.5b02004

    32. [32]

      Ma, T.; Yang, R.; Zheng, Z.; Song, Y. Rheology of fumed silica/polydimethylsiloxane suspensions. J. Rheol. 2017, 61(2), 205-215. doi: 10.1122/1.4973974

    33. [33]

      Ma, F.; Xu, B.; Song, Y.; Zheng, Q. Influence of molecular weight on molecular dynamics and dynamic rheology of polypropylene glycol filled with silica. RSC Adv. 2018, 8(56), 31972-31978. doi: 10.1039/C8RA04497J

    34. [34]

      Mathias, J.; Wannemacher, G. Basic characteristics and applications of aerosil: 30. The chemistry and physics of the aerosil Surface. J. Colloid Interf. Sci. 1988, 125(1), 61-68. doi: 10.1016/0021-9797(88)90054-9

    35. [35]

      Raghavan, S. R.; Walls, H. J.; Khan, S. A. Rheology of silica dispersions in organic liquids:  New evidence for solvation forces dictated by hydrogen bonding. Langmuir 2000, 16(21), 7920-7930. doi: 10.1021/la991548q

    36. [36]

      Napolitano, S.; Capponi, S.; Vanroy, B. Glassy dynamics of soft matter under 1D confinement: How irreversible adsorption affects molecular packing, mobility gradients and orientational polarization in thin films. Eur. Phys. J. E 2013, 36(6), 61-97. doi: 10.1140/epje/i2013-13061-8

    37. [37]

      Wang, C. Q.; Huang, Y. H.; Liao, B.; Zhao, S. L.; Lin, G.; Cong, G. M. Effects of the conductivity of sulfonated poly(phenylene oxide) lithium by the complexation of poly(ethylene oxide). Polym. Adv. Tech. 2015, 7(8), 697-700.

    38. [38]

      Di Noto, V.; Münchow, V.; Vittadello, M.; Collet, J. C.; Lavina, S. Synthesis and characterization of lithium and magnesium complexes based on [EDTA][PEG400]2 and [EDTA]3[PEG400]7. Macromol. Chem. Phys. 2002, 203(9), 1211–1227. doi: 10.1002/1521-3935(200206)203:9<1211::AID-MACP1211>3.0.CO;2-#

    39. [39]

      Barnes, H. Shear‐thickening ("dilatancy") in suspensions of nonaggregating solid particles dispersed in newtonian liquids. J. Rheol. 1989, 33(2), 329-366. doi: 10.1122/1.550017

    40. [40]

      Brown, E.; Jaeger, H. M. Dynamic jamming point for shear thickening suspensions. Phys. Rev. Lett. 2009, 103(8), 086001. doi: 10.1103/PhysRevLett.103.086001

    41. [41]

      Fall, A.; Bertrand, F.; Ovarlez,G.; Bonn, D. Shear thickening of cornstarch suspensions. J. Rheol. 2012, 56(3), 145-150.

    42. [42]

      Saito, Y.; Hirose, Y.; Otsubo, Y. Shear-induced reversible gelation of nanoparticle suspensions flocculated by poly(ethylene oxide). Colloid. Surf. A: Physicochem. Eng. Aspects 2011, 384(1), 40-46.

    43. [43]

      Zheng, Z.; Song, Y.; Wang, X.; Zheng, Q. Adjustable rheology of fumed silica dispersion in urethane prepolymers: Composition-dependent sol and gel behaviors and energy-mediated shear responses J. Rheol. 2015, 59(4), 971-993. doi: 10.1122/1.4922010

    44. [44]

      Boersma, W. H.; Laven, J.; Stein, H. N. Shear thickening (dilatancy) in concentrated dispersions. AICHE J. 1990, 36(3), 321-332. doi: 10.1002/aic.v36:3

    45. [45]

      Wagner, N. J.; Brady, J. F. Shear thickening in colloidal dispersions. Phys. Today 2009, 62(10), 27-32. doi: 10.1063/1.3248476

    46. [46]

      Cheng, X.; Mccoy, J. H.; Israelachvili, J. N.; Cohen, I. Imaging the microscopic structure of shear thinning and thickening colloidal suspensions. Science 2011, 333(6047), 1276-1279. doi: 10.1126/science.1207032

    47. [47]

      Brown, E.; Forman, N. A.; Orellana, C. S.; Zhang, H. J.; Maynor, B. W.; Betts, D. E.; DeSimone, J.M.; Jaeger, H. M. Generality of shear thickening in dense suspensions. Nat. Mater. 2010, 9(3), 220-224. doi: 10.1038/nmat2627

    48. [48]

      Waitukaitis, S. R.; Jaeger, H. M. Impact-activated solidification of dense suspensions via dynamic jamming fronts. Nature 2012, 487(7406), 205-209. doi: 10.1038/nature11187

    49. [49]

      Xu, B.; Song, Y.; Zheng, Q. Molecular relaxation and rheological behaviors of fumed silica/low-molecular weight polyethylene glycol suspensions. Acta Polymerica Sinica (in Chinese) 2017, 11, 1832-1840.

    50. [50]

      Nordström, J.; Aguilera, L.; Matic, A. Effect of lithium salt on the stability of dispersions of fumed silica in the ionic liquid BMImBF4. Langmuir 2012, 28(9), 4080-4085. doi: 10.1021/la204555g

    51. [51]

      Heinrich, G.; Klüppel, M.; Vilgis, T. A. Reinforcement of elastomers. Curr. Opin. Solid Struct. Mater. 2002, 6(3), 195-203. doi: 10.1016/S1359-0286(02)00030-X

    52. [52]

      Zhu, Z. Y.; Thompson, T.; Wang, S. Q.; von Meerwall, E. D.; Halasa, A. Investigating linear and nonlinear viscoelastic behavior using model silica-particle-filled polybutadiene. Macromolecules 2005, 38(21), 8816-8824. doi: 10.1021/ma050922s

    53. [53]

      Filippone, G.; Romeo, G.; Acierno, D. Viscoelasticity and structure of polystyrene/fumed silica nanocomposites: Filler network and hydrodynamic contributions. Langmuir 2010, 26(4), 2714-2720. doi: 10.1021/la902755r

    54. [54]

      Bailly, M.; Kontopoulou, M.; El Mabrouk, K. Effect of polymer/filler interactions on the structure and rheological properties of ethylene-octene copolymer/nanosilica composites. Polymer 2010, 51(23), 5506-5515. doi: 10.1016/j.polymer.2010.09.051

    55. [55]

      Wen, Y. H.; Lu, Y. Y.; Dobosz, K. M.; Archer, L. A. Structure, ion transport, and rheology of nanoparticle salts. Macromolecules 2014, 47(13), 4479-4492. doi: 10.1021/ma5004002

    56. [56]

      Kim, S. Y.; Meyer, H. W.; Saalwächter, K.; Zukoski, C. F. Polymer dynamics in PEG-silica nanocomposites: Effects of polymer molecular weight, temperature and solvent dilution. Macromolecules 2012, 45(10), 4225-4237. doi: 10.1021/ma300439k

    57. [57]

      Kim, S. Y.; Zukoski, C. F. Molecular weight effects on particle and polymer microstructure in concentrated polymer solutions. Macromolecules 2013, 46(16), 6634-6643. doi: 10.1021/ma400459c

    58. [58]

      Kwon, N. K.; Park, C. S.; Lee, C. H.; Kim, Y. S.; Zukoski, C. F.; Kim, S. Y. Tunable nanoparticle stability in concentrated polymer solutions on the basis of the temperature dependent solvent quality. Macromolecules 2016, 49(6), 2307-2317. doi: 10.1021/acs.macromol.5b02798

    59. [59]

      Srivastava, S.; Shin, J. H.; Archer, L. A. Structure and rheology of nanoparticle-polymer suspensions. Soft Matter 2012, 8(15), 4097-4108. doi: 10.1039/c2sm06889c

    60. [60]

      Zhang, X. X.; Zhang, H.; Wang, X. C.; Hu, L.; Niu, J. J. Crystallization and low temperature heat-storage behavior of PEG. J Tianjin I. Text. Sci. Technol. 1997, 16(3), 11-14.

    61. [61]

      Geiser, V.; Leterrier, Y.; Manson, J. E. Rheological behavior of concentrated hyperbranched polymer/ silica nanocomposite suspensions. Macromolecules 2010, 43(18), 7705-7712. doi: 10.1021/ma100569c

    62. [62]

      Ruggerone, R.; Geiser, V.; Vacche, S. D.; Leterrier, Y.; Manson, J. E. Immobilized polymer fraction in hyperbranched polymer/silica nanocomposite suspensions. Macromolecules 2010, 43(24), 10490-10497. doi: 10.1021/ma102074x

    63. [63]

      Boucher, V. M.; Cangialosi, D.; Alegría, A.; Colmenero, J.; Pastoriza-Santos, I.; Liz-Marzan, L. M. Physical aging of polystyrene/gold nanocomposites and its relation to the calorimetric Tg depression. Soft Matter 2011, 7(7), 3607-3620. doi: 10.1039/c0sm01326a

    64. [64]

      Klonos, P.; Panagopoulou, A.; Bokobza, L.; Kyritsis, A.; Peoglos, V.; Pissis, P. Comparative studies on effects of silica and titania nanoparticles on crystallization and complex segmental dynamics in poly(dimethylsiloxane). Polymer 2010, 51(23), 5490-5499. doi: 10.1016/j.polymer.2010.09.054

    65. [65]

      Gainaru, C.; Böhmer, R. Oligomer-to-polymer transition of poly(propylene glycol) revealed by dielectric normal modes. Macromolecules 2009, 42(20), 7616-7618. doi: 10.1021/ma901805c

  • 加载中
计量
  • PDF下载量:  0
  • 文章访问数:  1974
  • HTML全文浏览量:  81
文章相关
  • 发布日期:  2019-10-01
  • 收稿日期:  2019-06-20
  • 修回日期:  2019-07-11
  • 网络出版日期:  2019-08-21
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

/

返回文章