박사

전자피부용 늘어나는 NFC 소자의 제작 및 기계적, 전자기적 특성에 관한 연구 = Fabrication of stretchable near-field communication devices for epidermal electronics and study on their mechanical, electromagnetic properties

김정현 2015년
논문상세정보
    • 저자 김정현
    • 형태사항 삽도 ;: 26 cm: 133 p. :
    • 일반주기 지도교수: 백운규, 권두 Abstract, 권말 국문요지 수록, 참고문헌: p. 109-121
    • 학위논문사항 한양대학교 대학원 :, 신소재공학과,, 학위논문(박사)-, 2015. 8
    • 발행지 서울
    • 언어 eng
    • 출판년 2015
    • 발행사항 한양대학교 대학원,
    • 주제어 재료공학
    유사주제 논문( 21)
' 전자피부용 늘어나는 NFC 소자의 제작 및 기계적, 전자기적 특성에 관한 연구 = Fabrication of stretchable near-field communication devices for epidermal electronics and study on their mechanical, electromagnetic properties' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • 재료공학
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
22 0

0.0%

' 전자피부용 늘어나는 NFC 소자의 제작 및 기계적, 전자기적 특성에 관한 연구 = Fabrication of stretchable near-field communication devices for epidermal electronics and study on their mechanical, electromagnetic properties' 의 참고문헌

  • Ziai, M. A. & Batchelor, J. C. Temporary On-Skin PassiveUHF RFID Transfer Tag. Ieee T Antenn Propag 59, 3565-3571,doi:Doi 10.1109/Tap.2011.2163789 (2011).
  • Yi, X. et al. Passive wireless smart-skin sensor using RFID111based folded patch antennas. International Journal of Smartand Nano Materials 2, 22-38,doi:10.1080/19475411.2010.545450 (2011).
  • Yeo, W. H. et al. Multifunctional Epidermal Electronics PrintedDirectly Onto the Skin. Adv Mater 25, 2773-2778, doi:DOI10.1002/adma.201204426 (2013).
  • Yen, Y. S., Lin, F. & Chao, H. C. Integrated residential gateway:Easy IA management with P2P community using RFID. Ieee TConsum Electr 51, 824-830 (2005).
  • Xu, S. et al. Soft Microfluidic Assemblies of Sensors, Circuits,and Radios for the Skin. Science 344, 70-74, doi:DOI10.1126/science.1250169 (2014).
  • Windmiller, J. R. et al. Electrochemical sensing based onprintable temporary transfer tattoos. Chem Commun 48, 6794-6796, doi:Doi 10.1039/C2cc32839a (2012).
  • Webb, R. C. et al. Ultrathin conformal devices for precise andcontinuous thermal characterization of human skin. Nat Mater12, 938-944, doi:Doi 10.1038/Nmat3755 (2013).
  • Wang, S. D. et al. Mechanics of Epidermal Electronics. J ApplMech-T Asme 79, Doi 10.1115/1.4005963 (2012).
  • Ukkonen, L., Sydanheimo, L. & Kivikoski, M. Effects ofmetallic plate size on the performance of microstrip patch-typetag antennas for passive RFID. Ieee Antenn Wirel Pr 4, 410-413,doi:Doi 10.1109/Lawp.2005.860212 (2005).
  • Tikhov, Y. & Won, J. H. Impedance-matching arrangement formicrowave transponder operating over plurality of bentinstallations of antenna. Electron Lett 40, 574-575, doi:Doi10.1049/El:20040413 (2004).
  • Takaragi, K., Usami, M., Imura, R., Itsuki, R. & Satoh, T. Anultra small individual recognition security chip. Ieee Micro 21,43-49, doi:Doi 10.1109/40.977757 (2001).
  • Subramanian, V., Chang, P. C., Lee, J. B., Molesa, S. E. &Volkman, S. K. Printed organic transistors for ultra-low-costRFID applications. Ieee T Compon Pack T 28, 742-747,doi:Doi 10.1109/Tcapt.2005.859672 (2005).
  • Someya, T. et al. Conformable, flexible, large-area networks ofpressure and thermal sensors with organic transistor activematrixes. P Natl Acad Sci USA 102, 12321-12325 (2005).
  • Someya, T. Stretchable electronics. (Wiley-VCH, 2013).
  • Smith, J. R. et al. RFID-based techniques for human-activity119detection. Commun Acm 48, 39-44, doi:Doi10.1145/1081992.1082018 (2005).
  • Singh, S. P., McCartney, M., Singh, J. & Clarke, R. RFIDresearch and testing for packages of apparel, consumer goods114and fresh produce in the retail distribution environment. Packag Technol Sci 21, 91-102, doi:Doi 10.1002/Pts.782(2008).
  • Siden, J. et al. in Proceedings of the 4th InternationalSymposium on Applied Sciences in Biomedical andCommunication Technologies. 150 (ACM).
  • Saeed, M. Q. & Walter, C. D. Off-line NFC Tag Authentication. 2012 International Conference for Internet Technology andSecured Transactions, 730-735 (2012).
  • Rose, D. P. et al. Adhesive RFID Sensor Patch for Monitoringof Sweat Electrolytes. (2014).
  • Rogers, J. A., Someya, T. & Huang, Y. G. Materials andMechanics for Stretchable Electronics. Science 327, 1603-1607,doi:DOI 10.1126/science.1182383 (2010).
  • Rogers, J. A. et al. Paper-like electronic displays: Large-arearubber-stamped plastic sheets of electronics andmicroencapsulated electrophoretic inks. P Natl Acad Sci USA98, 4835-4840, doi:DOI 10.1073/pnas.091588098 (2001).
  • Rogers, J. A. Electronics for the Human Body. Jama-J Am MedAssoc 313, 561-562 (2015).
  • Ritamaki, M., Ruhanen, A., Kukko, V., Miettinen, I. & Turner,L. H. Contactless radiation pattern measurement method forUHF RFID transponders. Electron Lett 41, 723-724, doi:Doi10.1049/El:20051029 (2005).
  • Repo, P., Kerttula, M., Salmela, M. & Huomo, H. Virtualproduct design case study: The Nokia RFID tag reader. IeeePervas Comput 4, 95-99, doi:Doi 10.1109/Mprv.2005.92(2005).
  • Redinger, D., Molesa, S., Yin, S., Farschi, R. & Subramanian, V. 117An ink-jet-deposited passive component process for RFID. IeeeT Electron Dev 51, 1978-1983, doi:Doi10.1109/Ted.2004.838451 (2004).
  • Rasul, J. S. Chip on paper technology utilizing anisotropicallyconductive adhesive for smart label applications. MicroelectronReliab 44, 135-140, doi:Doi 10.1016/S0026-2714(03)00240-3(2004).
  • Rao, K. V. S., Nikitin, P. V. & Lam, S. F. Antenna design forUHF RFID tags: A review and a practical application. Ieee TAntenn Propag 53, 3870-3876, doi:Doi10.1109/Tap.2005.859919 (2005).
  • Philipose, M. et al. Battery-free wireless identification andsensing. Ieee Pervas Comput 4, 37-45, doi:Doi10.1109/Mprv.2005.7 (2005).
  • P, H. & J, H. Wearable Technology Materials 2015-2025. (2015).
  • Nikitin, P. V. et al. Power reflection coefficient analysis forcomplex impedances in RFID tag design. Ieee T MicrowTheory 53, 2721-2725, doi:Doi 10.1109/Tmtt.2005.854191(2005).
  • Ni, L. M., Liu, Y. H., Lau, Y. C. & Patil, A. P. LANDMARC:Indoor location sensing using active RFID. Wirel Netw 10, 701-710, doi:Doi 10.1023/B:Wine.0000044029.06344.Dd (2004).
  • Ngai, E. W. T., Moon, K. K. L., Riggins, F. J. & Yi, C. Y. RFIDresearch: An academic literature review (1995-2005) and futureresearch directions. Int J Prod Econ 112, 510-520, doi:DOI10.1016/j.ijpe.2007.05.004 (2008).
  • Nambiar, A. N. RFID Technology: A Review of itsApplications. Lect Notes Eng Comp, 1253-1259 (2009).
  • Najera, P., Roman, R. & Lopez, J. User-centric secureintegration of personal RFID tags and sensor networks. Security and Communication Networks, n/a-n/a,doi:10.1002/sec.684 (2013).
  • Murdan, S. Transverse fingernail curvature in adults: a121quantitative evaluation and the influence of gender, age, andhand size and dominance. Int J Cosmetic Sci 33, 509-513,doi:DOI 10.1111/j.1468-2494.2011.00663.x (2011).
  • Moore, B. The potential use of radio frequency identificationdevices for active monitoring of blood glucose levels. Journalof diabetes science and technology 3, 180-183 (2009).
  • Massoth, M. & Bingel, T. in Internet and Web Applications andServices, 2009. ICIW'09. Fourth International Conference on. 115205-210 (IEEE).
  • Marcus, A. et al. Using NFC-enabled Mobile Phones for PublicHealth in Developing Countries. First International Workshopon near Field Communication, Proceedings, 30-35, doi:Doi10.1109/Nfc.2009.25 (2009).
  • Madlmayr, G., Langer, J., Kantner, C. & Scharinger, J. inAvailability, Reliability and Security, 2008. ARES 08. ThirdInternational Conference on. 642-647 (IEEE).
  • Lee, Y. 1-18 (Microchip AN678, 1998).
  • Lahtela, A., Hassinen, M. & Jylha, V. RFID and NFC inHealthcare: Safety of Hospitals Medication Care. 2008 2ndInternational Conference on Pervasive ComputingTechnologies for Healthcare, 229-232 (2008).
  • Kwon, H. & Lee, B. Compact slotted planar inverted-F RFIDtag mountable on metallic objects. Electron Lett 41, 1308-1310,118doi:Doi 10.1049/El:20052940 (2005).
  • Kim, R. H. et al. Materials and Designs for Wirelessly PoweredImplantable Light-Emitting Systems. Small 8, 2812-2818,112doi:DOI 10.1002/smll.201200943 (2012).
  • Kim, J. et al. Epidermal Electronics with AdvancedCapabilities in Near-Field Communication. Small 11, 906-912,doi:DOI 10.1002/smll.201402495 (2015).
  • Kim, D.-H. et al. Materials and noncoplanar mesh designs forintegrated circuits with linear elastic responses to extrememechanical deformations. Proceedings of the NationalAcademy of Sciences 105, 18675-18680 (2008).
  • Kim, D. H. et al. Epidermal Electronics. Science 333, 838-843,doi:DOI 10.1126/science.1206157 (2011).
  • Khang, D.-Y., Jiang, H., Huang, Y. & Rogers, J. A. A113stretchable form of single-crystal silicon for high-performanceelectronics on rubber substrates. Science 311, 208-212 (2006).
  • Keskilammi, M., Sydanheimo, L. & Kivikoski, M. Radiofrequency technology for automated manufacturing andlogistics control. Part 1: Passive RFID systems and the effectsof antenna parameters on operational distance. Int J Adv ManufTech 21, 769-774, doi:DOI 10.1007/s00170-002-1392-1 (2003).
  • Keskilammi, M. & Kivikoski, M. Using Text as a MeanderLine for RFID Transponder Antennas. Ieee Antenn Wirel Pr 3,372-374, doi:Doi 10.1109/Lawp.2004.841212 (2004).
  • Kenneth, K. O. et al. On-chip antennas in silicon ICs and theirapplication. Ieee T Electron Dev 52, 1312-1323, doi:Doi10.1109/Ted.2005.850668 (2005).
  • Jang, K. I. et al. Soft network composite materials withdeterministic and bio-inspired designs. Nat Commun 6, 6566,doi:10.1038/ncomms7566 (2015).
  • Hung, P. J., Jeong, K., Liu, G. L. & Lee, L. P. Microfabricatedsuspensions for electrical connections on the tunable elastomermembrane. Appl Phys Lett 85, 6051-6053 (2004).
  • Huang, X. et al. Stretchable, wireless sensors and functionalsubstrates for epidermal characterization of sweat. Small 10,3083-3090, doi:10.1002/smll.201400483 (2014).
  • Huang, X. et al. Materials and Designs for Wireless EpidermalSensors of Hydration and Strain. Adv Funct Mater 24, 3846-3854, doi:DOI 10.1002/adfm.201303886 (2014).
  • Huang, K. & Peumans, P. in Smart Structures and Materials. 617412-617412-617410 (International Society for Optics andPhotonics).
  • Hirvonen, M., Pursula, P., Jaakkola, K. & Laukkanen, K. Planarinverted-F antenna for radio frequency identification. ElectronLett 40, 848-850, doi:Doi 10.1049/El:20045156 (2004).
  • Heikkinen, J. & Kivikoski, M. Low-profile circularly polarizedrectifying antenna for wireless power transmission at 5.8 GHz. Ieee Microw Wirel Co 14, 162-164, doi:Doi10.1109/Lmwc.2004.827114 (2004).
  • Harpster, T. J., Stark, B. & Najafi, K. A passive wirelessintegrated humidity sensor. Sensor Actuat a-Phys 95, 100-107,doi:Doi 10.1016/S0924-4247(01)00720-8 (2002).
  • Frisk, L., Jarvinen, J. & Ristolainen, R. Chip on flex attachmentwith thermoplastic ACF for RFID applications. MicroelectronReliab 42, 1559-1562, Doi 10.1016/S0026-2714(02)00190-7(2002).
  • Foster, K. R. & Jaeger, J. RFID inside - The murky ethics ofimplanted chips. Ieee Spectrum 44, 24-29, doi:Doi10.1109/Mspec.2007.323430 (2007).
  • Fisher, M. (Google Patents, 2013).
  • Du, H. NFC Technology: Today and Tomorrow. InternationalJournal of Future Computer and Communication, 351-354,doi:10.7763/ijfcc.2013.v2.183 (2013).
  • Dinyari, R., Rim, S.-B., Huang, K., Catrysse, P. B. & Peumans,P. Curving monolithic silicon for nonplanar focal plane arrayapplications. Appl Phys Lett 92, 091114 (2008).
  • Deville, Y., Damour, J. & Charkani, N. Multi-tag radiofrequencyidentification systems based on new blind sourceseparation neural networks. Neurocomputing 49, 369-388, Doi12010.1016/S0925-2312(02)00514-3 (2002).
  • De Vita, G. & Iannaccone, G. Design criteria for the RF sectionof UHF and I microwave passive RFID transponders. Ieee TMicrow Theory 53, 2978-2990, doi:Doi10.1109/Tmtt.2005.854229 (2005).
  • Curty, J. P., Joehl, N., Dehollain, C. & Declercq, M. J. Remotely powered addressable UHF RFID integrated system. Ieee J Solid-St Circ 40, 2193-2202, doi:Doi10.1109/Jssc.2005.857352 (2005).
  • Coskun, V., Ozdenizci, B. & Ok, K. A Survey on Near Field110Communication (NFC) Technology. Wireless Pers Commun 71,2259-2294, doi:DOI 10.1007/s11277-012-0935-5 (2013).
  • Choi, W. M. et al. Biaxially stretchable “wavy” siliconnanomembranes. Nano Letters 7, 1655-1663 (2007).
  • Cho, C., Choo, H. & Park, I. Broadband RFID tag antenna withquasi-isotropic radiation pattern. Electron Lett 41, 1091-1092,doi:Doi 10.1049/El:20052337 (2005).
  • Chlamtac, I., Petrioli, C. & Redi, J. Energy-conserving accessprotocols for identification networks. Ieee Acm T Network 7,51-59, doi:Doi 10.1109/90.759318 (1999).
  • Chen, W., Hancke, G., Mayes, K., Lien, Y. & Chiu, J.-H. inNear Field Communication (NFC), 2010 Second InternationalWorkshop on. 83-89 (IEEE).
  • Chen, S. Y. & Hsu, P. CPW-fed folded-slot antenna for 5.8GHzRFID tags. Electron Lett 40, 1516-1517, doi:Doi10.1049/El:20046780 (2004).
  • Cabria, L., Garcia, J. A., Malaver, E. & Tazon, A. A PHEMTFrequency Doubling Active Antenna With BPSK Modulation116Capability. Ieee Antenn Wirel Pr 3, 310-313, doi:Doi10.1109/Lawp.2004.838821 (2004).
  • Biebl, E. M. RF systems based on active integrated antennas. Aeu-Int J Electron C 57, 173-180, doi:Doi 10.1078/1434-8411-54100158 (2003).
  • Bean, W. B. Nail Growth - 35 Years of Observation. ArchIntern Med 140, 73-76, doi:DOI 10.1001/archinte.140.1.73(1980).
  • Alani, M., Ismail, W. & Mandeep, J. S. Active RFID systemand applications. Electron World 115, 22-24 (2009).
  • ?nidar?i?, A. & Werber, B. Adoption of RFID microchip foreHealth according to eActivities of potential users. (2014).