$\require{mediawiki-texvc}$

연합인증

연합인증 가입 기관의 연구자들은 소속기관의 인증정보(ID와 암호)를 이용해 다른 대학, 연구기관, 서비스 공급자의 다양한 온라인 자원과 연구 데이터를 이용할 수 있습니다.

이는 여행자가 자국에서 발행 받은 여권으로 세계 각국을 자유롭게 여행할 수 있는 것과 같습니다.

연합인증으로 이용이 가능한 서비스는 NTIS, DataON, Edison, Kafe, Webinar 등이 있습니다.

한번의 인증절차만으로 연합인증 가입 서비스에 추가 로그인 없이 이용이 가능합니다.

다만, 연합인증을 위해서는 최초 1회만 인증 절차가 필요합니다. (회원이 아닐 경우 회원 가입이 필요합니다.)

연합인증 절차는 다음과 같습니다.

최초이용시에는
ScienceON에 로그인 → 연합인증 서비스 접속 → 로그인 (본인 확인 또는 회원가입) → 서비스 이용

그 이후에는
ScienceON 로그인 → 연합인증 서비스 접속 → 서비스 이용

연합인증을 활용하시면 KISTI가 제공하는 다양한 서비스를 편리하게 이용하실 수 있습니다.

Controlled alignment catalytically grown nanostructures 원문보기

IPC분류정보
국가/구분 United States(US) Patent 등록
국제특허분류(IPC7판)
  • H01L-021/00
출원번호 US-0089099 (2005-03-24)
등록번호 US-7408186 (2008-08-05)
발명자 / 주소
  • Merkulov,Vladimir I.
  • Melechko,Anatoli V.
  • Guillorn,Michael A.
  • Lowndes,Douglas H.
  • Simpson,Michael L.
출원인 / 주소
  • UT Battelle LLC
대리인 / 주소
    Bruckner PC,John
인용정보 피인용 횟수 : 72  인용 특허 : 15

초록

Systems and methods are described for controlled alignment of catalyticaly grown nanostructures in a large-scale synthesis process. A composition includes an elongated nanostructure including a first segment defining a first axis and a second segment coupled to the first segment, the second segment

대표청구항

What is claimed is: 1. A composition, comprising an elongated nanostructure including a first elongated segment defining a first axis and a second elongated segment coupled to the first segment, the second elongated segment defining a second axis that is substantially nonparallel to the first axis;

이 특허에 인용된 특허 (15)

  1. Merkulov,Vladimir I.; Melechko,Anatoli V.; Guillorn,Michael A.; Lowndes,Douglas H.; Simpson,Michael L., Apparatus for controlled alignment of catalytically grown nanostructures.
  2. Lee, James Weifu; Lowndes, Douglas H.; Merkulov, Vladimir I.; Eres, Gyula; Wei, Yayi; Greenbaum, Elias; Lee, Ida, Catalyst-induced growth of carbon nanotubes on tips of cantilevers and nanowires.
  3. Merkulov, Vladimir I.; Melechko, Anatoil V.; Guillorn, Michael A.; Lowndes, Douglas H.; Simpson, Michael L., Controlled non-normal alignment of catalytically grown nanostructures in a large-scale synthesis process.
  4. Bower, Christopher Andrew; Zhou, Otto; Zhu, Wei, Device comprising carbon nanotube field emitter structure and process for forming device.
  5. Jackson, Thomas N.; Mayer, Theresa, Electric field assisted assembly process.
  6. Khare,Bishun N.; Meyyappan,Meyya, Functionalization of carbon nanotubes.
  7. Fan,Shou Shan; Liu,Liang, Isotope-doped carbon nanotube and method and apparatus for forming the same.
  8. Kjellman, Jan; Lindmark, Magnus, Light source, and a field emission cathode.
  9. Gersonde Michael S., Method and apparatus for direct write fabrication of nanostructures.
  10. Cuomo, Jerome J.; Williams, N. Mark; Hanser, Andrew David; Carlson, Eric Porter; Thomas, Darin Taze, Method and apparatus for producing MIIIN columns and MIIIN materials grown thereon.
  11. Colbert, Daniel T.; Dai, Hongjie; Hafner, Jason H.; Rinzler, Andrew G.; Smalley, Richard E.; Smith, Kenneth A.; Liu, Jie; Guo, Ting; Nikolaev, Pavel; Thess, Andreas, Method for growing continuous carbon fiber and compositions thereof.
  12. Colbert, Daniel T.; Dai, Hongjie; Hafner, Jason H.; Rinzler, Andrew G.; Smalley, Richard E., Method for growing single-wall carbon nanotubes utilizing seed molecules.
  13. Colbert, Daniel T.; Dai, Hongjie; Hafner, Jason H.; Rinzler, Andrew G.; Smalley, Richard E., Method for producing a catalyst support and compositions thereof.
  14. Colbert, Daniel T.; Dai, Hongjie; Hafner, Jason H.; Rinzler, Andrew G.; Smalley, Richard E.; Liu, Jie; Smith, Kenneth A.; Guo, Ting; Nikolaev, Pavel; Thess, Andreas, Method of forming composite arrays of single-wall carbon nanotubes and compositions thereof.
  15. James Weifu Lee ; Elias Greenbaum, Programmable nanometer-scale electrolytic metal deposition and depletion.

이 특허를 인용한 특허 (72)

  1. Millward, Dan B.; Westmoreland, Donald; Sandhu, Gurtej, Alternating self-assembling morphologies of diblock copolymers controlled by variations in surfaces.
  2. Millward, Dan B.; Westmoreland, Donald; Sandhu, Gurtej, Alternating self-assembling morphologies of diblock copolymers controlled by variations in surfaces.
  3. Millward, Dan B.; Westmoreland, Donald; Sandhu, Gurtej, Alternating self-assembling morphologies of diblock copolymers controlled by variations in surfaces.
  4. Noyes, Dallas B.; Ring, Terry A., Carbon oxide reduction with intermetallic and carbide catalysts.
  5. Millward, Dan B., Crosslinkable graft polymer non preferentially wetted by polystyrene and polyethylene oxide.
  6. Millward, Dan B., Crosslinkable graft polymer non-preferentially wetted by polystyrene and polyethylene oxide.
  7. Millward, Dan B., Crosslinkable graft polymer non-preferentially wetted by polystyrene and polyethylene oxide.
  8. Noyes, Dallas B., Electrodes comprising nanostructured carbon.
  9. Millward, Dan B., Extensions of self-assembled structures to increased dimensions via a “bootstrap” self-templating method.
  10. Millward, Dan B., Extensions of self-assembled structures to increased dimensions via a “bootstrap” self-templating method.
  11. Millward, Dan B., Extensions of self-assembled structures to increased dimensions via a “bootstrap” self-templating method.
  12. Millward, Dan B.; Westmoreland, Donald, Graphoepitaxial self-assembly of arrays of downward facing half-cylinders.
  13. Millward, Dan B.; Westmoreland, Donald, Graphoepitaxial self-assembly of arrays of downward facing half-cylinders.
  14. Kruckenberg, Teresa M.; Pujar, Vijay V., Lightning strike protection.
  15. Kruckenberg, Teresa M.; Hill, Valerie A.; Mazany, Anthony Michael; Young, Eloise; Chiou, Song, Low density lightning strike protection for use in airplanes.
  16. Noyes, Dallas B., Method for producing solid carbon by reducing carbon oxides.
  17. Noyes, Dallas B., Method for producing solid carbon by reducing carbon oxides.
  18. Millward, Dan B.; Sandhu, Gurtej S., Method to produce nanometer-sized features with directed assembly of block copolymers.
  19. Noyes, Dallas B., Methods and systems for forming ammonia and solid carbon products.
  20. Noyes, Dallas B., Methods and systems for thermal energy recovery from production of solid carbon materials by reducing carbon oxides.
  21. Noyes, Dallas B., Methods for producing solid carbon by reducing carbon dioxide.
  22. Noyes, Dallas B., Methods for producing solid carbon by reducing carbon dioxide.
  23. Noyes, Dallas B., Methods for reducing carbon oxides with non ferrous catalysts and forming solid carbon products.
  24. Noyes, Dallas B., Methods for treating an offgas containing carbon oxides.
  25. Noyes, Dallas B., Methods for treating an offgas containing carbon oxides.
  26. Noyes, Dallas B., Methods of capturing and sequestering carbon.
  27. Millward, Dan B.; Quick, Timothy A., Methods of forming a nanostructured polymer material including block copolymer materials.
  28. Millward, Dan B., Methods of forming a stamp and a stamp.
  29. Millward, Dan B., Methods of forming an array of openings in a substrate, and related methods of forming a semiconductor device structure.
  30. Millward, Dan B.; Sills, Scott E., Methods of forming block copolymers, and block copolymer compositions.
  31. Noyes, Dallas B., Methods of forming carbon nanotubes having a bimodal size distribution.
  32. Hendricks, Nicholas; Olson, Adam L.; Brown, William R.; Eom, Ho Seop; Chen, Xue; Jain, Kaveri; Schuldenfrei, Scott, Methods of forming nanostructures including metal oxides.
  33. Sills, Scott E.; Millward, Dan B., Methods of forming semiconductor device structures.
  34. Millward, Dan B.; Quick, Timothy A.; Greeley, J. Neil, Methods of forming semiconductor device structures including metal oxide structures.
  35. Khurana, Ranjan; Lugani, Gurpreet S.; Millward, Dan B., Methods of forming semiconductor device structures, and related semiconductor device structures.
  36. Sills, Scott E.; Millward, Dan B., Methods of forming semiconductor device structures, and related structures.
  37. Regner, Jennifer Kahl, Methods of improving long range order in self-assembly of block copolymer films with ionic liquids.
  38. Regner, Jennifer Kahl, Methods of improving long range order in self-assembly of block copolymer films with ionic liquids.
  39. Regner, Jennifer Kahl, Methods of improving long range order in self-assembly of block copolymer films with ionic liquids and materials produced therefrom.
  40. Marsh, Eugene P.; Millward, Dan B., Methods of patterning a substrate including multilayer antireflection coatings.
  41. Noyes, Dallas B., Methods of producing hydrogen and solid carbon.
  42. Millward, Dan B., Multi-layer method for formation of registered arrays of cylindrical pores in polymer films.
  43. Kruckenberg, Teresa M.; Hill, Valerie A., Nacelles and nacelle components containing nanoreinforced carbon fiber composite material.
  44. Millward, Dan B.; Stuen, Karl, One-dimensional arrays of block copolymer cylinders and applications thereof.
  45. Millward, Dan B.; Stuen, Karl, One-dimensional arrays of block copolymer cylinders and applications thereof.
  46. McKnight, Timothy E.; Kalluri, Udaya C.; Melechko, Anatoli V., Platform for immobilization and observation of subcellular processes.
  47. Millward, Dan B., Polymer materials for formation of registered arrays of cylindrical pores.
  48. Millward, Dan B.; Westmoreland, Donald L., Polymeric materials in self-assembled arrays and semiconductor structures comprising polymeric materials.
  49. Millward, Dan B.; Westmoreland, Donald L., Polymeric materials in self-assembled arrays and semiconductor structures comprising polymeric materials.
  50. Noyes, Dallas B., Primary voltaic sources including nanofiber Schottky barrier arrays and methods of forming same.
  51. McCutchen, Wilmot H.; McCutchen, David J., Radial counterflow shear electrolysis.
  52. Noyes, Dallas B., Reactors and methods for producing solid carbon materials.
  53. Noyes, Dallas B., Reactors and methods for producing solid carbon materials.
  54. Noyes, Dallas B., Reactors, systems, and methods for forming solid products.
  55. Millward, Dan B.; Marsh, Eugene P., Registered structure formation via the application of directed thermal energy to diblock copolymer films.
  56. Millward, Dan B.; Marsh, Eugene P., Registered structure formation via the application of directed thermal energy to diblock copolymer films.
  57. Hendricks, Nicholas; Olson, Adam L.; Brown, William R.; Eom, Ho Seop; Chen, Xue; Jain, Kaveri; Schuldenfrei, Scott, Self-assembled nanostructures including metal oxides and semiconductor structures comprised thereof.
  58. Millward, Dan B.; Quick, Timothy A.; Greeley, J. Neil, Semiconductor device structures including metal oxide structures.
  59. Millward, Dan B.; Quick, Timothy A.; Greeley, J. Neil, Semiconductor structures including polymer material permeated with metal oxide.
  60. Noyes, Dallas B., Solid carbon products comprising carbon nanotubes and methods of forming same.
  61. Millward, Dan B.; Sandhu, Gurtej S., Stamps and methods of forming a pattern on a substrate.
  62. Millward, Dan B., Sub-10 NM line features via rapid graphoepitaxial self-assembly of amphiphilic monolayers.
  63. Millward, Dan B., Sub-10 NM line features via rapid graphoepitaxial self-assembly of amphiphilic monolayers.
  64. Millward, Dan B., Sub-10 nm line features via rapid graphoepitaxial self-assembly of amphiphilic monolayers.
  65. Millward, Dan B., Sub-10 nm line features via rapid graphoepitaxial self-assembly of amphiphilic monolayers.
  66. Noyes, Dallas B., Systems for producing solid carbon by reducing carbon oxides.
  67. Millward, Dan B.; Westmoreland, Donald L.; Sandhu, Gurtej S., Templates including self-assembled block copolymer films.
  68. Millward, Dan B.; Quick, Timothy, Thermal anneal of block copolymer films with top interface constrained to wet both blocks with equal preference.
  69. Millward, Dan B.; Quick, Timothy, Thermal anneal of block copolymer films with top interface constrained to wet both blocks with equal preference.
  70. Millward, Dan B.; Quick, Timothy A., Thermal anneal of block copolymer films with top interface constrained to wet both blocks with equal preference.
  71. Millward, Dan B., Two-dimensional arrays of holes with sub-lithographic diameters formed by block copolymer self-assembly.
  72. Millward, Dan B., Two-dimensional arrays of holes with sub-lithographic diameters formed by block copolymer self-assembly.
섹션별 컨텐츠 바로가기

AI-Helper ※ AI-Helper는 오픈소스 모델을 사용합니다.

AI-Helper 아이콘
AI-Helper
안녕하세요, AI-Helper입니다. 좌측 "선택된 텍스트"에서 텍스트를 선택하여 요약, 번역, 용어설명을 실행하세요.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.

선택된 텍스트

맨위로