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Chemical manufacture of nanostructured materials 원문보기

IPC분류정보
국가/구분 United States(US) Patent 등록
국제특허분류(IPC7판)
  • C01B-031/04
출원번호 US-0160985 (2002-05-30)
발명자 / 주소
  • Mack, Julia J
  • Viculis, Lisa M.
  • Kaner, Richard B
출원인 / 주소
  • The Regents of the University of California
대리인 / 주소
    Koppel, Jacobs, Patrick &
인용정보 피인용 횟수 : 68  인용 특허 : 3

초록

A low temperature chemical route to efficiently produce nanomaterials is described. The nanomaterials are synthesized by intercalating ions into layered compounds, exfoliating to create individual layers and then sonicating to produce nanotubes, nanorods, nanoscrolls and/or nanosheets. It is applica

대표청구항

1. A process for the formation of nanostructured materials comprising:a. providing a layered compound or element, b. causing an intercalating material to penetrate between layers of the layered compound or element to form an intercalated composition, and c. exfoliating the intercalated composition b

이 특허에 인용된 특허 (3)

  1. Sakawaki Kouji (Kitakyushu JPX) Yoshizumi Yuji (Kitakyushu JPX) Yamashita Yutaka (Kitakyushu JPX), Foliated fine graphite particles and method for preparing same.
  2. Zaleski Peter L. ; Derwin David J. ; Girkant Richard J., Method for expanding lamellar forms of graphite and resultant product.
  3. Bunnell L. Roy (Kennewick WA), Method for producing thin graphite flakes with large aspect ratios.

이 특허를 인용한 특허 (68)

  1. Zhamu, Aruna; Jang, Bor Z., Alkali metal battery having an integral 3D graphene-carbon-metal hybrid foam-based electrode.
  2. Wolfe, Thomas D., Anti-terrorism water quality monitoring system.
  3. Wolfe, Thomas D., Anti-terrorism water quality monitoring system.
  4. Wolfe, Thomas D., Anti-terrorism water quality monitoring system.
  5. Wang, Jianjun; Zhu, Mingyao; Holloway, Brian C.; Outlaw, Ronald A.; Manos, Dennis M.; Zhao, Xin, Carbon nanostructures and methods of making and using the same.
  6. Salzer, Corey Alan; Young, Russell Martin; Carrabba, Michael Mario; Rajasekharan, Vishnu Vardhanan; Fair, Christopher Patrick; Carpenter, Jr., Frank Howland; Lee, John Edwin, Carbon nanotube sensor.
  7. Salzer, Corey Alan; Young, Russell Martin; Carrabba, Michael Mario; Rajasekharan, Vishnu Vardhanan; Fair, Christopher Patrick; Fitzgerald, Terrance William; Carpenter, Jr., Frank Howland; Lee, John Edwin, Carbon nanotube sensor.
  8. Zhamu, Aruna; Jang, Bor Z, Chemical-free production of 3D graphene-carbon hybrid foam.
  9. Zhamu, Aruna; Jang, Bor Z., Chemical-free production of graphene-encapsulated electrode active material particles for battery applications.
  10. Zhamu, Aruna; Jang, Bor Z, Chemical-free production of graphene-reinforced polymer matrix composites.
  11. Zhamu, Aruna; Jang, Bor Z., Chemical-free production of graphene-wrapped electrode active material particles for battery applications.
  12. Zhamu, Aruna; Jang, Bor Z., Conductive graphene polymer binder for electrochemical cell electrodes.
  13. Shi, Jinjun; Zhamu, Aruna; Jang, Bor Z., Conductive nanocomposite-based electrodes for lithium batteries.
  14. Li, Yunjun, Curing binder material for carbon nanotube electron emission cathodes.
  15. Zhamu, Aruna; Jang, Bor Z, Direct ultrasonication production of graphene sheets from coke or coal.
  16. Jang, Bor Z.; Zhamu, Aruna, Dispersible and conductive nano graphene platelets.
  17. Gotou,Takuya, Dispersion of thin particles having a skeleton consisting of carbons.
  18. Zhamu, Aruna; Jang, Bor Z, Electrochemical method of producing nano graphene platelets.
  19. Zhamu, Aruna; Jang, Joan; Jang, Bor Z., Electrochemical method of producing nano-scaled graphene platelets.
  20. Hudak, Nicholas; Schlichting, Alexander; Eisenbeiser, Kurt, Enhanced structural supercapacitors.
  21. Zhamu, Aruna; Jang, Bor Z., Environmentally benign graphite intercalation compound composition for exfoliated graphite, flexible graphite, and nano-scaled graphene platelets.
  22. Zhamu, Aruna; Jang, Bor Z, Environmentally benign production of graphene materials.
  23. Zhamu, Aruna; Jang, Bor Z., Graphene-metal hybrid foam-based electrode for an alkali metal battery.
  24. Veedu, Vinod P.; Kanavaram, Venkat, Highly durable composite and manufacturing thereof.
  25. Sun, Ya-Ping; Connell, John W.; Veca, Lucia Monica, Highly thermal conductive nanocomposites.
  26. Sun, Ya-Ping; Connell, John W.; Veca, Lucia Monica, Highly thermal conductive nanocomposites.
  27. Zhamu, Aruna; Jang, Bor Z., Hybrid nano-filament anode compositions for lithium ion batteries.
  28. Zhamu, Aruna; Jang, Bor Z., Integral 3D graphene-carbon hybrid foam.
  29. Zhamu, Aruna; Jang, Bor Z, Integral 3D graphene-carbon hybrid foam and devices containing same.
  30. Zhamu, Aruna; Jang, Bor Z., Integral 3D graphene-carbon hybrid foam separation device.
  31. Zhamu, Aruna; Jang, Bor Z, Integral 3D humic acid-carbon hybrid foam and devices containing same.
  32. Wang,Ning; Dong,Yi; Li,Yi Qun, Low platinum fuel cell catalysts and method for preparing the same.
  33. Gu, Tao; Omstead, Thomas R.; Wang, Ning; Dong, Yi; Li, Yi-Qun, Low platinum fuel cells, catalysts, and method for preparing the same.
  34. Zhamu, Aruna; Shi, Jinjun; Guo, Jiusheng; Jang, Bor Z., Low-temperature method of producing nano-scaled graphene platelets and their nanocomposites.
  35. Jang, Bor Z.; Zhamu, Aruna; Guo, Jiusheng, Mass production of nano-scaled platelets and products.
  36. Zhamu, Aruna; Jang, Bor Z., Metal-sulfur battery cathode containing humic acid-derived conductive foam impregnated with sulfur or sulfide.
  37. Wolfe, Thomas D.; Scholpp, Charles, Method and system for remote monitoring of fluid quality and treatment.
  38. Wada, Takuya; Nakasuga, Akira; Toyoda, Masahiro, Method for producing random-structure GIC, method for producing exfoliated graphite dispersion liquid, exfoliated graphite dispersion liquid, and exfoliated graphite.
  39. Zhu,Huai Yong; Lu,Gao Qing, Method of making metal oxide nanoparticles in an exfoliated silicate framework.
  40. Zhamu, Aruna; Shi, Jinjun; Guo, Jiusheng; Jang, Bor Z., Method of producing exfoliated graphite, flexible graphite, and nano-scaled graphene platelets.
  41. Zhamu, Aruna; Jang, Bor Z., Method of producing hybrid nano-filament electrodes for lithium metal or lithium ion batteries.
  42. Jang, Bor Z.; Zhamu, Aruna, Method of producing nano-scaled graphene and inorganic platelets and their nanocomposites.
  43. Jang, Bor Z.; Zhamu, Aruna, Method of producing nano-scaled graphene and inorganic platelets and their nanocomposites.
  44. Zhamu, Aruna; Jang, Bor Z., Method of producing nano-scaled inorganic platelets.
  45. Zhamu, Aruna; Jang, Bor Z., Mixed nano-filament electrode materials for lithium ion batteries.
  46. Zhamu, Aruna; Jang, Bor Z., Nano graphene platelet-base composite anode compositions for lithium ion batteries.
  47. Jang, Bor Z.; Zhamu, Aruna, Nano graphene platelet-based conductive inks and printing process.
  48. Zhamu, Aruna; Guo, Jiusheng; Jang, Bor Z., Nano-scaled graphene platelets with a high length-to-width aspect ratio.
  49. Jang,Bor Z.; Huang,Wen C., Nano-scaled graphene plates.
  50. Zhamu, Aruna; Jang, Bor Z., One-step production of graphene materials.
  51. Ittel, Steven Dale, Process for demetallization of carbon nanotubes.
  52. Jang, Bor Z.; Zhamu, Aruna, Process for producing dispersible and conductive nano graphene platelets from non-oxidized graphitic materials.
  53. Jang, Bor Z.; Zhamu, Aruna, Process for producing dispersible nano graphene platelets from oxidized graphite.
  54. Zhamu, Aruna; Jang, Bor Z, Process for producing highly oriented humic acid films and highly conducting graphitic films derived therefrom.
  55. Zhamu, Aruna; Jang, Bor z., Process for producing humic acid-bonded metal foil film current collector.
  56. Zhamu, Aruna; Jang, Bor Z.; Shi, Jinjun, Process for producing hybrid nano-filament electrodes for lithium batteries.
  57. Burton, David Joseph; Jang, Bor Z; Zhamu, Aruna, Production of graphene materials in a cavitating fluid.
  58. Zhamu, Aruna; Guo, Jiusheng; Jang, Bor Z., Production of ultra-thin nano-scaled graphene platelets from meso-carbon micro-beads.
  59. Brown,Kurt E.; Murphy,William L., Reactive media, methods of use and assemblies for purifying.
  60. Halpert,Jonathan E.; Bawendi,Moungi G., Semiconductor nanocrystal heterostructures.
  61. Zhamu, Aruna; Jang, Bor Z, Supercapacitor having an integral 3D graphene-carbon hybrid foam-based electrode.
  62. Zhao, Xin, Supercapacitor using carbon nanosheets as electrode.
  63. Zhamu, Aruna; Jang, Bor Z., Supercritical fluid process for producing graphene from coke or coal.
  64. Zhamu, Aruna; Jang, Bor Z., Supercritical fluid process for producing nano graphene platelets.
  65. Wolfe, Thomas D., System for monitoring discharges into a waste water collection system.
  66. Rowe, Michael Paul, Ternary thermoelectric material containing nanoparticles and process for producing the same.
  67. Wolfe, Thomas D., Water monitoring system.
  68. Wolfe, Thomas D., Water monitoring system.
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