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Improving guidewire-mediated steerability of a magnetically actuated flexible microrobot 원문보기

Micro and nano systems letters, v.6 no.1, 2018년, pp.15 -   

Jeon, Sungwoong ,  Hoshiar, Ali Kafash ,  Kim, Sangwon ,  Lee, Seungmin ,  Kim, Eunhee ,  Lee, Sunkey ,  Kim, Kangho ,  Lee, Jeonghun ,  Kim, Jin-young ,  Choi, Hongsoo

초록이 없습니다.

참고문헌 (34)

  1. Nanomaterials A Kafash Hoshiar 8 1 3 2017 10.3390/nano8010003 Kafash Hoshiar A, Le T, Amin F, Kim M, Yoon J (2017) A novel magnetic actuation scheme to disaggregate nanoparticles and enhance passage across the blood-brain barrier. Nanomaterials 8(1):3 

  2. J Magn Magn Mater A Kafash Hoshiar 427 181 2017 10.1016/j.jmmm.2016.11.016 Kafash Hoshiar A, Le T, Amin F, Kim M, Yoon J (2017) Studies of aggregated nanoparticles steering during magnetic-guided drug delivery in the blood vessels. J Magn Magn Mater 427:181-187 

  3. Nanoscale F Amin 9 30 10619 2017 10.1039/C7NR00772H Amin F et al (2017) Osmotin-loaded magnetic nanoparticles with electromagnetic guidance for the treatment of Alzheimer’s disease. Nanoscale 9(30):10619-10632 

  4. Adv Mater S Kim 25 5863 2013 10.1002/adma.201301484 Kim S, Qiu F, Kim S, Ghanbari A, Moon C, Zhang L et al (2013) Fabrication and characterization of magnetic microrobots for three-dimensional cell culture and targeted transportation. Adv Mater 25:5863-5868 

  5. Invest Ophthalmol Vis Sci F Ullrich 54 2853 2013 10.1167/iovs.13-11825 Ullrich F, Bergeles C, Pokki J, Ergeneman O, Erni S, Chatzipirpiridis G et al (2013) Mobility experiments with microrobots for minimally invasive intraocular surgery: microrobot experiments for intraocular surgery. Invest Ophthalmol Vis Sci 54:2853-2863 

  6. Sci Rep J Han 6 28717 2016 10.1038/srep28717 Han J, Zhen J, Go G, Choi Y, Ko SY, Park JO, Park S (2016) Hybrid-actuating macrophage-based microrobots for active cancer therapy. Sci Rep 6:28717 

  7. Sci Rep S Kim 6 30713 2016 10.1038/srep30713 Kim S, Lee S, Lee J, Nelson BJ, Zhang L, Choi H (2016) Fabrication and manipulation of ciliary microrobots with non-reciprocal magnetic actuation. Sci Rep 6:30713 

  8. Adv Mater A Servant 27 19 2981 2015 10.1002/adma.201404444 Servant A, Qiu F, Mazza M, Kostarelos K, Nelson BJ (2015) Controlled in vivo swimming of a swarm of bacteria-like microrobotic flagella. Adv Mater 27(19):2981-2988 

  9. Appl Phys Lett L Zhang 94 6 064107 2009 10.1063/1.3079655 Zhang L, Abbott JJ, Dong L, Kratochvil BE, Bell D, Nelson BJ (2009) Artificial bacterial flagella: fabrication and magnetic control. Appl Phys Lett 94(6):064107 

  10. Int J Robot Res JJ Abbott 28 11-12 1434 2009 10.1177/0278364909341658 Abbott JJ, Peyer KE, Lagomarsino MC, Zhang L, Dong L, Kaliakatsos IK, Nelson BJ (2009) How should microrobots swim? Int J Robot Res 28(11-12):1434-1447 

  11. Annu Rev Biomed Eng BJ Nelson 12 55 2010 10.1146/annurev-bioeng-010510-103409 Nelson BJ, Kaliakatsos IK, Abbott JJ (2010) Microrobots for minimally invasive medicine. Annu Rev Biomed Eng 12:55-85 

  12. Chem Eur J KE Peyer 19 1 28 2013 10.1002/chem.201203364 Peyer KE, Tottori S, Qiu F, Zhang L, Nelson BJ (2013) Magnetic helical micromachines. Chem Eur J 19(1):28-38 

  13. Int J Med Robot Comput Assist Surg Y Fu 5 4 381 2009 10.1002/rcs.282 Fu Y, Liu H, Huang W, Wang S, Liang Z (2009) Steerable catheters in minimally invasive vascular surgery. Int J Med Robot Comput Assist Surg 5(4):381-391 

  14. IJC Heart Vasculature G Touma 7 28 2015 10.1016/j.ijcha.2015.02.002 Touma G, Ramsay D, Weaver J (2015) Chronic total occlusions-current techniques and future directions. IJC Heart Vasculature 7:28-39 

  15. 10.1089/soro.2018.0019 Jeon S, Kafash Hoshiar A, Kim K, Lee S, Kim E, Lee S et al (2018) A magnetically controlled soft microrobot steering a guidewire in a three-dimensional phantom vascular network. soft robotics, On-line published 

  16. Micromachines A Kafash Hoshiar 9 12 617 2018 10.3390/mi9120617 Kafash Hoshiar A, Jeon S, Kim K, Lee S, Kim JY, Choi H (2018) Steering algorithm for a flexible microrobot to enhance guidewire control in a coronary angioplasty application. Micromachines 9(12):617 

  17. Sci Rep S Lee 8 1 3691 2018 10.1038/s41598-018-22110-5 Lee S, Lee S, Kim S, Yoon CH, Park HJ, Kim JY, Choi H (2018) Fabrication and characterization of a magnetic drilling actuator for navigation in a three-dimensional phantom vascular network. Sci Rep 8(1):3691 

  18. Houser RA, Bourne T (1998) U.S. Patent No. 5,833,604. Washington, DC: U.S. Patent and Trademark Office 

  19. 10.1109/EMBC.2015.7320241 Chatzipirpiridis G, Erne P, Ergeneman O, Pane S, Nelson BJ (2015). A magnetic force sensor on a catheter tip for minimally invasive surgery. In: Engineering in medicine and biology society (EMBC), 2015 37th annual international conference of the IEEE, pp 7970-7973 

  20. Neuroradiology T Krings 48 6 394 2006 10.1007/s00234-006-0082-3 Krings T, Finney J, Niggemann P, Reinacher P, Luck N, Drexler A et al (2006) Magnetic versus manual guidewire manipulation in neuroradiology: in vitro results. Neuroradiology 48(6):394-401 

  21. Radiology M Schiemann 232 2 475 2004 10.1148/radiol.2322030533 Schiemann M, Killmann R, Kleen M, Abolmaali N, Finney J, Vogl TJ (2004) Vascular guide wire navigation with a magnetic guidance system: experimental results in a phantom. Radiology 232(2):475-481 

  22. Petruska AJ, Ruetz F, Hong A, Regli L, Surucu O, Zemmar A, Nelson BJ (2016). Magnetic needle guidance for neurosurgery: initial design and proof of concept. In: Robotics and automation (ICRA), 2016 IEEE international conference on, pp 4392-4397 

  23. J Cardiovasc Magn Reson L Muller 14 1 33 2012 10.1186/1532-429X-14-33 Muller L, Saeed M, Wilson MW, Hetts SW (2012) Remote control catheter navigation: options for guidance under MRI. J Cardiovasc Magn Reson 14(1):33 

  24. Med Phys V Lalande 42 2 969 2015 10.1118/1.4906194 Lalande V, Gosselin FP, Vonthron M, Conan B, Tremblay C, Beaudoin G et al (2015) In vivo demonstration of magnetic guidewire steerability in a MRI system with additional gradient coils. Med Phys 42(2):969-976 

  25. Med Phys F Settecase 34 8 3135 2007 10.1118/1.2750963 Settecase F, Sussman MS, Wilson MW, Hetts S, Arenson RL, Malba V et al (2007) Magnetically-assisted remote control (MARC) steering of endovascular catheters for interventional MRI: a model for deflection and design implications. Med Phys 34(8):3135-3142 

  26. IEEJ Trans Sens Micromachines Y Haga 120 11 509 2000 10.1541/ieejsmas.120.509 Haga Y, Esashi M (2000) Small diameter active catheter using shape memory alloy coils. IEEJ Trans Sens Micromachines 120(11):509-514 

  27. J Med Devices HC Clogenson 8 2 021002 2014 10.1115/1.4026560 Clogenson HC, Dankelman J, van den Dobbelsteen JJ (2014) Steerable guidewire for magnetic resonance guided endovascular interventions. J Med Devices 8(2):021002 

  28. Lab Chip M Zhang 10 9 1199 2010 10.1039/b923101c Zhang M, Wu J, Wang L, Xiao K, Wen W (2010) A simple method for fabricating multi-layer PDMS structures for 3D microfluidic chips. Lab Chip 10(9):1199-1203 

  29. IEEE Trans Magn S Schuerle 49 1 321 2013 10.1109/TMAG.2012.2224693 Schuerle S, Erni S, Flink M, Kratochvil BE, Nelson BJ (2013) Three-dimensional magnetic manipulation of micro- and nanostructures for applications in life sciences. IEEE Trans Magn 49(1):321-330 

  30. 10.1007/978-3-642-28572-1_22 Kratochvil BE, Kummer MP, Erni S, Borer R, Frutiger DR, Schurle S, Nelson BJ (2014). MiniMag: a hemispherical electromagnetic system for 5-DOF wireless micromanipulation. In: Experimental robotics. Springer, Berlin, pp 317-329 

  31. IEEE Trans Rob MP Kummer 26 6 1006 2010 10.1109/TRO.2010.2073030 Kummer MP, Abbott JJ, Kratochvil BE, Borer R, Sengul A, Nelson BJ (2010) OctoMag: an electromagnetic system for 5-DOF wireless micromanipulation. IEEE Trans Rob 26(6):1006-1017 

  32. Sens Actuators B Chem JY Kim 266 276 2018 10.1016/j.snb.2018.03.033 Kim JY, Jeon S, Lee J, Lee S, Lee J, Jeon BO et al (2018) A simple and rapid fabrication method for biodegradable drug-encapsulating microrobots using laser micromachining, and characterization thereof. Sens Actuators B Chem 266:276-287 

  33. Adv Healthc Mater S Lee 7 9 1700985 2018 10.1002/adhm.201700985 Lee S, Kim S, Kim S, Kim JY, Moon C, Nelson BJ, Choi H (2018) A capsule-type microrobot with pick-and-drop motion for targeted drug and cell delivery. Adv Healthc Mater 7(9):1700985 

  34. Nanotechnology E Kim 27 17 175303 2016 10.1088/0957-4484/27/17/175303 Kim E, Yoo SJ, Kwon TH, Zhang L, Moon C, Choi H (2016) Nano-patterned SU-8 surface using nanosphere-lithography for enhanced neuronal cell growth. Nanotechnology 27(17):175303 

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