메뉴 건너뛰기




Volumn 209, Issue , 2015, Pages 413-422

A new thin silicon microneedle with an embedded microchannel for deep brain drug infusion

Author keywords

Buried microchannel; Embedded microfluidic channel; Glass reflow; Microneedle

Indexed keywords

DRUG INFUSION; FABRICATION; FLOW RATE; GLASS; MICROCHANNELS; MICROFLUIDICS; NEEDLES; SILICON; SILICON WAFERS; WAFER BONDING;

EID: 84919726011     PISSN: 09254005     EISSN: None     Source Type: Journal    
DOI: 10.1016/j.snb.2014.11.132     Document Type: Article
Times cited : (37)

References (24)
  • 1
    • 84892959152 scopus 로고    scopus 로고
    • A microfluidic reciprocating intracochlear drug delivery system with reservoir and active dose control
    • E.S. Kim, E. Gustenhoven, M.J. Mescher, E.E.L. Pararas, K.A. Smith, and A.J. Spencer A microfluidic reciprocating intracochlear drug delivery system with reservoir and active dose control Lab Chip 14 2014 710 721
    • (2014) Lab Chip , vol.14 , pp. 710-721
    • Kim, E.S.1    Gustenhoven, E.2    Mescher, M.J.3    Pararas, E.E.L.4    Smith, K.A.5    Spencer, A.J.6
  • 4
    • 2942594011 scopus 로고    scopus 로고
    • Modulation of brain tumor capillaries for enhanced drug delivery selectively to brain tumor
    • K.L. Black, and N.S. Ningaraj Modulation of brain tumor capillaries for enhanced drug delivery selectively to brain tumor Cancer Control 11 2004 165 173
    • (2004) Cancer Control , vol.11 , pp. 165-173
    • Black, K.L.1    Ningaraj, N.S.2
  • 6
    • 1542358759 scopus 로고    scopus 로고
    • Microneedles for transdermal drug delivery
    • M.R. Prausnitz Microneedles for transdermal drug delivery Adv. Drug Delivery Rev. 56 2004 581 587
    • (2004) Adv. Drug Delivery Rev. , vol.56 , pp. 581-587
    • Prausnitz, M.R.1
  • 7
    • 84879769559 scopus 로고    scopus 로고
    • Tools, methods, and applications for optophysiology in neuroscience
    • N. Smedemark-Margulies, and J.G. Trapani Tools, methods, and applications for optophysiology in neuroscience Front. Mol. Neurosci. 6 2013 1 13
    • (2013) Front. Mol. Neurosci. , vol.6 , pp. 1-13
    • Smedemark-Margulies, N.1    Trapani, J.G.2
  • 9
    • 84874836317 scopus 로고    scopus 로고
    • SU-8 based microprobes for simultaneous neural depth recording and drug delivery in the brain
    • A. Altuna, E. Bellistri, E. Cid, P. Aivar, B. Gal, and J. Berganzo SU-8 based microprobes for simultaneous neural depth recording and drug delivery in the brain Lab Chip 13 2013 1422 1430
    • (2013) Lab Chip , vol.13 , pp. 1422-1430
    • Altuna, A.1    Bellistri, E.2    Cid, E.3    Aivar, P.4    Gal, B.5    Berganzo, J.6
  • 11
    • 0742269314 scopus 로고    scopus 로고
    • Planar CMOS compatible process for the fabrication of buried microchannels in silicon, using porous-silicon technology
    • G. Kaltsas, D.N. Pagonis, and A.G. Nassiopoulou Planar CMOS compatible process for the fabrication of buried microchannels in silicon, using porous-silicon technology J. Microelectromech. Syst. 12 2003 863 872
    • (2003) J. Microelectromech. Syst. , vol.12 , pp. 863-872
    • Kaltsas, G.1    Pagonis, D.N.2    Nassiopoulou, A.G.3
  • 12
    • 0031214943 scopus 로고    scopus 로고
    • A multichannel neural probe for selective chemical delivery at the cellular level
    • J. Chen, K.D. Wise, J.F. Hetke, and S. Bledsoe A multichannel neural probe for selective chemical delivery at the cellular level IEEE Trans. Biomed. Eng. 44 1997 760 769
    • (1997) IEEE Trans. Biomed. Eng. , vol.44 , pp. 760-769
    • Chen, J.1    Wise, K.D.2    Hetke, J.F.3    Bledsoe, S.4
  • 14
    • 0032136370 scopus 로고    scopus 로고
    • Wafer-to-wafer bonding for microstructure formation
    • M.A. Schmidt Wafer-to-wafer bonding for microstructure formation Proc. IEEE 86 1998 1575 1585
    • (1998) Proc. IEEE , vol.86 , pp. 1575-1585
    • Schmidt, M.A.1
  • 15
    • 1642321075 scopus 로고    scopus 로고
    • Collapse of microchannels during anodic bonding: Theory and experiments
    • W.-P. Shih, C.-Y. Hui, and N.C. Tien Collapse of microchannels during anodic bonding: theory and experiments J. Appl. Phys. 95 2004 2800 2808
    • (2004) J. Appl. Phys. , vol.95 , pp. 2800-2808
    • Shih, W.-P.1    Hui, C.-Y.2    Tien, N.C.3
  • 17
    • 84905581655 scopus 로고    scopus 로고
    • Versatile size and shape microlens arrays with high numerical apertures
    • H.J. Lee, K. Yanghee, Y. Eui-Sung, and C. Il-Joo Versatile size and shape microlens arrays with high numerical apertures J. Microelectromech. Syst. 23 2014 771 773
    • (2014) J. Microelectromech. Syst. , vol.23 , pp. 771-773
    • Lee, H.J.1    Yanghee, K.2    Eui-Sung, Y.3    Il-Joo, C.4
  • 18
    • 0031101856 scopus 로고    scopus 로고
    • Analysis of bonding-related gas enclosure in micromachined cavities sealed by silicon wafer bonding
    • S. Mack, H. Baumann, U. Gösele, H. Werner, and R. Schlögl Analysis of bonding-related gas enclosure in micromachined cavities sealed by silicon wafer bonding J. Electrochem. Soc. 144 1997 1106 1111
    • (1997) J. Electrochem. Soc. , vol.144 , pp. 1106-1111
    • Mack, S.1    Baumann, H.2    Gösele, U.3    Werner, H.4    Schlögl, R.5
  • 19
    • 84896716498 scopus 로고    scopus 로고
    • A glass-in-silicon reflow process for three-dimensional microsystems
    • R.U.M. Haque, and K.D. Wise A glass-in-silicon reflow process for three-dimensional microsystems J. Microelectromech. Syst. 22 2013 1470 1477
    • (2013) J. Microelectromech. Syst. , vol.22 , pp. 1470-1477
    • Haque, R.U.M.1    Wise, K.D.2
  • 24
    • 79955629423 scopus 로고    scopus 로고
    • Biocompatibility of intracortical microelectrodes: Current status and future prospects
    • C. Marin, and E. Fernández Biocompatibility of intracortical microelectrodes: current status and future prospects Front. Neuroeng. 3 2010 1 6
    • (2010) Front. Neuroeng. , vol.3 , pp. 1-6
    • Marin, C.1    Fernández, E.2


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.