-
1
-
-
0003691544
-
-
Massachusetts Institute of Technology, assignee. inventors; United States patent US 5204055. April 20
-
Sachs EM, Haggerty JS, Cima MJ, Williams PA, inventors; Massachusetts Institute of Technology, assignee. Three-dimensional printing technologies. United States patent US 5204055. 1993 April 20.
-
(1993)
Three-dimensional printing technologies.
-
-
Sachs, E.M.1
Haggerty, J.S.2
Cima, M.J.3
Williams, P.A.4
-
2
-
-
84922710732
-
-
How 3D printing works. [report on the Internet]. Rock Hill (SC): 3D Systems Corp; Jan [cited 2014 Jan 27]
-
How 3D printing works. The vision, innovation and technologies behind inkjet 3D printing [report on the Internet]. Rock Hill (SC): 3D Systems Corp; 2012 Jan [cited 2014 Jan 27]. Available from: http:// www.zcorp.com/documents/791_8914-3DPrintingWhitePaper.pdf.
-
(2012)
The vision, innovation and technologies behind inkjet 3D printing
-
-
-
3
-
-
84922704607
-
-
[report on the Internet]. Washington, DC: Educause Learning Initiative; July 10 [cited 2014 Dec 6]
-
7 Things you should know about 3D printing [report on the Internet]. Washington, DC: Educause Learning Initiative; 2012 July 10 [cited 2014 Dec 6]. Available from: http://www.educause.edu/library/ resources/7-things-you-should-know-about-3d-printing/.
-
(2012)
7 Things you should know about 3D printing
-
-
-
4
-
-
84883668719
-
-
Burlington (MA): Z Corpopration; [cited 2014 Dec 6]
-
Z Corporation 3D printing technology. Burlington (MA): Z Corpopration; 2005 [cited 2014 Dec 6]. Available from: http://www.ucy.ac.cy/arch/documents/3d_Printer_Lab/3D_Printing_Technology.pdf.
-
(2005)
Z Corporation 3D printing technology
-
-
-
5
-
-
58149204685
-
Three dimensional printing: Rapid tooling and prototypes directly from a CAD model
-
Sachs E, Cima M, Cornie J. Three dimensional printing: rapid tooling and prototypes directly from a CAD model. CIRP Ann Manufg Technol. 1990;39(1):201-4.
-
(1990)
CIRP Ann Manufg Technol.
, vol.39
, Issue.1
, pp. 201-204
-
-
Sachs, E.1
Cima, M.2
Cornie, J.3
-
7
-
-
84922709400
-
3D printing: Opportunities and challenges
-
Giller E, Azzolino F, Davidson T. 3D printing: opportunities and challenges. IQT Q. 2012;4(2):9-13.
-
(2012)
IQT Q.
, vol.4
, Issue.2
, pp. 9-13
-
-
Giller, E.1
Azzolino, F.2
Davidson, T.3
-
8
-
-
84922742740
-
-
Dimension white paper [report on the Internet]. Eden Prairie (MN): Stratasys, Inc.; [cited 2014 Dec 6]
-
Enhancing the design process with 3D printing. Dimension white paper [report on the Internet]. Eden Prairie (MN): Stratasys, Inc.; c2009 [cited 2014 Dec 6]. Available from: http://files.asme.org/MEMagazine/ PaperLibrary/28959.pdf.
-
(2009)
Enhancing the design process with 3D printing.
-
-
-
9
-
-
79952416113
-
-
State of the industry. Fort Collins (CO): Wohlers Associates
-
Wohlers T. Additive manufacturing. State of the industry. Fort Collins (CO): Wohlers Associates; 2011.
-
(2011)
Additive manufacturing
-
-
Wohlers, T.1
-
12
-
-
84880065951
-
-
Washington, DC: Science and Technology Policy Institute
-
Scott J, Gupta N, Weber C, Newsome S, Wohlers T, Caffrey T. Additive manufacturing: status and opportunities. Washington, DC: Science and Technology Policy Institute; 2012.
-
(2012)
Additive manufacturing: Status and opportunities
-
-
Scott, J.1
Gupta, N.2
Weber, C.3
Newsome, S.4
Wohlers, T.5
Caffrey, T.6
-
13
-
-
84944185883
-
Optimization of additive manufacturing processes focused on 3D printing
-
Hoque ME, ed. [monograph on the Internet]. Rijeka, Croatia: InTech; Sept 26 [cited 2014 Dec 6]
-
Udroiu R, Nedelcu A. Optimization of additive manufacturing processes focused on 3D printing. In: Hoque ME, ed. Rapid prototyping technology - principles and functional requirements [monograph on the Internet]. Rijeka, Croatia: InTech; 2001 Sept 26 [cited 2014 Dec 6]. Available from: http://www. ikhlaqsidhu.files.wordpress.com/2013/06/3d_bio-printing.pdf/.
-
(2001)
Rapid prototyping technology - principles and functional requirements
-
-
Udroiu, R.1
Nedelcu, A.2
-
14
-
-
84945147870
-
-
Berkeley: University of California
-
Coatney S, Gandhi B, Park BS, Dzilno D, Tapia EM, Kamarthy G, Sidhu I. 3D bio-printing. Fung technical report no. 2013.04.17. Berkeley: University of California; 2013. Available from: http:// www.funginstitute.berkeley.edu/sites/default/files/3D_Bio-printing.pdf.
-
(2013)
3D bio-printing. Fung technical report no. 2013.04.17.
-
-
Coatney, S.1
Gandhi, B.2
Park, B.S.3
Dzilno, D.4
Tapia, E.M.5
Kamarthy, G.6
Sidhu, I.7
-
16
-
-
84922756955
-
-
[article on the Internet]. WIPO Magazine, 2013 April
-
Jewell C. 3-D printing and the future of stuff [article on the Internet]. WIPO Magazine, 2013 April. Available from: www.wipo.int/wipo_magazine en/2013/02/article_0004.html/.
-
3-D printing and the future of stuff
-
-
Jewell, C.1
-
17
-
-
84879351899
-
Possibility of reconstruction of dental plaster cast from 3D digital study models
-
Kasperova M, Grafova L, Dvorak P, Dostalova T, Prochazka A, Eliasova H, Prusa J, Kakawand S. Possibility of reconstruction of dental plaster cast from 3D digital study models. Biomed Eng Online. 2013;12(49): 1-11.
-
(2013)
Biomed Eng Online.
, vol.12
, Issue.49
, pp. 1-11
-
-
Kasperova, M.1
Grafova, L.2
Dvorak, P.3
Dostalova, T.4
Prochazka, A.5
Eliasova, H.6
Prusa, J.7
Kakawand, S.8
-
18
-
-
84884824127
-
Application and performance of 3D printing in nanobiomaterials
-
Liu W, Li Y, Liu J, Niu X, Wang Y, Li D. Application and performance of 3D printing in nanobiomaterials. J Nanomater. 2013;2013:681050.
-
(2013)
J Nanomater.
, vol.2013
-
-
Liu, W.1
Li, Y.2
Liu, J.3
Niu, X.4
Wang, Y.5
Li, D.6
-
19
-
-
68349110071
-
3D Printing of biological materials for drug delivery and tissue engineering applications
-
Radulescu D, Trost HJ, Taylor DT, Antohe B, Silva D, Schwade ND, Tarcha PJ, Dhar S, Evans GR. 3D Printing of biological materials for drug delivery and tissue engineering applications. Digit Fabr. 2005:18-21.
-
(2005)
Digit Fabr.
, pp. 18-21
-
-
Radulescu, D.1
Trost, H.J.2
Taylor, D.T.3
Antohe, B.4
Silva, D.5
Schwade, N.D.6
Tarcha, P.J.7
Dhar, S.8
Evans, G.R.9
-
20
-
-
79955613975
-
Three dimensional printing of hierarchical and tough mesoporous bioactive glass scaffolds with a controllable pore architecture, excellent mechanical strength and mineralization ability
-
Wu C, Luo Y, Cuniberti G, Xiao Y, Gelinsky M. Three dimensional printing of hierarchical and tough mesoporous bioactive glass scaffolds with a controllable pore architecture, excellent mechanical strength and mineralization ability. Acta Biomater. 2011;7(6):2644-50.
-
(2011)
Acta Biomater.
, vol.7
, Issue.6
, pp. 2644-2650
-
-
Wu, C.1
Luo, Y.2
Cuniberti, G.3
Xiao, Y.4
Gelinsky, M.5
-
21
-
-
0036191695
-
The design of scaffolds for use in tissue engineering. Part II. Rapid prototyping techniques
-
Yang S, Leong KF, Du Z, Chua CK. The design of scaffolds for use in tissue engineering. Part II. Rapid prototyping techniques. Tissue Eng. 2002;8(1):1-11.
-
(2002)
Tissue Eng.
, vol.8
, Issue.1
, pp. 1-11
-
-
Yang, S.1
Leong, K.F.2
Du, Z.3
Chua, C.K.4
-
22
-
-
84898428256
-
-
19th Solid Freeform Fabrication Symposium, 2008 August 4-6, Austin, TX
-
Choi JW, Park IB, Wicker R, Lee SH, Kim HC. Fabrication of complex 3D micro-scale scaffolds and drug delivery devices using dynamic mask projection microstereolithography. 19th Solid Freeform Fabrication Symposium, 2008 August 4-6, Austin, TX, 2008:652-67.
-
(2008)
Fabrication of complex 3D micro-scale scaffolds and drug delivery devices using dynamic mask projection microstereolithography.
, pp. 652-667
-
-
Choi, J.W.1
Park, I.B.2
Wicker, R.3
Lee, S.H.4
Kim, H.C.5
-
23
-
-
84859709092
-
Microfabrication technologies for oral drug delivery
-
Sant S, Tao SL, Fisher O, Xu QB, Peppas NA, Khademhosseini A. Microfabrication technologies for oral drug delivery. Adv Drug Deliv Rev. 2012;64(6):496-507.
-
(2012)
Adv Drug Deliv Rev.
, vol.64
, Issue.6
, pp. 496-507
-
-
Sant, S.1
Tao, S.L.2
Fisher, O.3
Xu, Q.B.4
Peppas, N.A.5
Khademhosseini, A.6
-
24
-
-
77953651502
-
A review on stereolithography and its applications in biomedical engineering
-
Melchels FPW, Feijen J, Grijpma DW. A review on stereolithography and its applications in biomedical engineering. Biomaterials. 2010;31(24):6121-30.
-
(2010)
Biomaterials.
, vol.31
, Issue.24
, pp. 6121-6130
-
-
Melchels, F.P.W.1
Feijen, J.2
Grijpma, D.W.3
-
25
-
-
84876926333
-
3D printing of multifunctional nanocomposites
-
Campbell TA, Ivanova OS. 3D printing of multifunctional nanocomposites. Nano Today. 2013;8(2):119-20.
-
(2013)
Nano Today.
, vol.8
, Issue.2
, pp. 119-120
-
-
Campbell, T.A.1
Ivanova, O.S.2
-
26
-
-
68249118384
-
A review of process development steps for new material systems in three dimensional printing (3DP)
-
Utela B, Storti D, Anderson R, Ganter M. A review of process development steps for new material systems in three dimensional printing (3DP). J Manuf Process. 2008;10(2):96-104.
-
(2008)
J Manuf Process.
, vol.10
, Issue.2
, pp. 96-104
-
-
Utela, B.1
Storti, D.2
Anderson, R.3
Ganter, M.4
-
27
-
-
79957768993
-
Production methods for nanodrug particles using the bottom-up approach
-
Chan HK, Kwok PCL. Production methods for nanodrug particles using the bottom-up approach. Adv Drug Deliv Rev. 2011;63:406-16.
-
(2011)
Adv Drug Deliv Rev.
, vol.63
, pp. 406-416
-
-
Chan, H.K.1
Kwok, P.C.L.2
-
28
-
-
77951983470
-
Nanotechnology: Particle size reduction technologies in the pharmaceutical development process
-
April
-
Moschwitzer J. Nanotechnology: particle size reduction technologies in the pharmaceutical development process. Am Pharm Rev. 2010:April:54-9.
-
(2010)
Am Pharm Rev.
, pp. 54-59
-
-
Moschwitzer, J.1
-
29
-
-
84922710442
-
Combinative particle size reduction technologies for the production of drug nanoparticles
-
Salazar J, Muller RH, Moschwitzer JP. Combinative particle size reduction technologies for the production of drug nanoparticles. J Pharm. 2014;2014:265754.
-
(2014)
J Pharm.
, vol.2014
-
-
Salazar, J.1
Muller, R.H.2
Moschwitzer, J.P.3
-
30
-
-
84922705341
-
-
Rehovot, Israel: Object Geometries Ltd; [cited 2014 Dec 6]
-
Brief & diagram: the Objet polyjet process [Internet]. Rehovot, Israel: Object Geometries Ltd; 2005 [cited 2014 Dec 6]. Available from: http://web.archive.org/web/20060208015155/http://2objet.com/ Technology/BriefDiagram/tabid/84/Default.aspx/.
-
(2005)
Brief & diagram: The Objet polyjet process [Internet].
-
-
-
31
-
-
71549141624
-
Micro and nanotechnologies for intelligent and responsive biomaterial- based medical systems
-
Caldorera-Moore M, Peppas NA. Micro and nanotechnologies for intelligent and responsive biomaterial- based medical systems. Adv Drug Deliv Rev. 2009;61(15):1391-401.
-
(2009)
Adv Drug Deliv Rev.
, vol.61
, Issue.15
, pp. 1391-1401
-
-
Caldorera-Moore, M.1
Peppas, N.A.2
-
32
-
-
84876586802
-
Nano- and microfabrication for overcoming drug delivery challenges
-
Kam KR, Desai TA. Nano- and microfabrication for overcoming drug delivery challenges. J Mater Chem B Mater Biol Med. 2013;1(14):1878-84.
-
(2013)
J Mater Chem B Mater Biol Med.
, vol.1
, Issue.14
, pp. 1878-1884
-
-
Kam, K.R.1
Desai, T.A.2
-
33
-
-
77949942627
-
Designer nanoparticles: Incorporating size, shape and triggered release into nanoscale drug carriers
-
Caldorera-Moore M, Guimard N, Shi L, Roy K. Designer nanoparticles: incorporating size, shape and triggered release into nanoscale drug carriers. Expert Opin Drug Deliv. 2010;7(4):479-95.
-
(2010)
Expert Opin Drug Deliv.
, vol.7
, Issue.4
, pp. 479-495
-
-
Caldorera-Moore, M.1
Guimard, N.2
Shi, L.3
Roy, K.4
-
34
-
-
65449157628
-
An implantable MEMS drug delivery device for rapid delivery in ambulatory emergency care
-
Elman NM, Ho Due HL, Cima MJ. An implantable MEMS drug delivery device for rapid delivery in ambulatory emergency care. Biomed Microdevices. 2009;11(3):625-31.
-
(2009)
Biomed Microdevices.
, vol.11
, Issue.3
, pp. 625-631
-
-
Elman, N.M.1
Ho Due, H.L.2
Cima, M.J.3
-
36
-
-
77949320729
-
Top-down particle fabrication: Control of size and shape for diagnostic imaging and drug delivery
-
Canelas DA, Herlihy KP, DeSimone JM. Top-down particle fabrication: control of size and shape for diagnostic imaging and drug delivery. Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2009;1(4):391-404.
-
(2009)
Wiley Interdiscip Rev Nanomed Nanobiotechnol.
, vol.1
, Issue.4
, pp. 391-404
-
-
Canelas, D.A.1
Herlihy, K.P.2
DeSimone, J.M.3
-
37
-
-
27844509988
-
Microfabricated drug delivery devices
-
Hilt JZ, Peppas NA. Microfabricated drug delivery devices. Int J Pharm. 2005;306:15-23.
-
(2005)
Int J Pharm.
, vol.306
, pp. 15-23
-
-
Hilt, J.Z.1
Peppas, N.A.2
-
38
-
-
85045055070
-
Review on micro and nano lithography techniques and their applications
-
Pimpin A, Srituravanich W. Review on micro and nano lithography techniques and their applications. Eng J. 2011;6(1):1-19.
-
(2011)
Eng J.
, vol.6
, Issue.1
, pp. 1-19
-
-
Pimpin, A.1
Srituravanich, W.2
-
39
-
-
38349144057
-
Nanoimprint lithography based fabrication of shape-specific, enzymatically triggered smart nanoparticles
-
Glangchai LC, Caldorera-Moore M, Shi L, Roy K. Nanoimprint lithography based fabrication of shape-specific, enzymatically triggered smart nanoparticles. J Control Release. 2008;125(3): 263-72.
-
(2008)
J Control Release.
, vol.125
, Issue.3
, pp. 263-272
-
-
Glangchai, L.C.1
Caldorera-Moore, M.2
Shi, L.3
Roy, K.4
-
40
-
-
33751182499
-
Application of inkjet printing to tissue engineering
-
Boland T, Xu T, Damon B, Cui XF. Application of inkjet printing to tissue engineering. Biotechnol J. 2006;1:910-7.
-
(2006)
Biotechnol J.
, vol.1
, pp. 910-917
-
-
Boland, T.1
Xu, T.2
Damon, B.3
Cui, X.F.4
-
41
-
-
84885186498
-
Inkjet printing as a technique for filling of micro-wells with biocompatible polymers
-
Mariza P, Keller SS, Boisen A. Inkjet printing as a technique for filling of micro-wells with biocompatible polymers. Microelectron Eng. 2013;111:391-5.
-
(2013)
Microelectron Eng.
, vol.111
, pp. 391-395
-
-
Mariza, P.1
Keller, S.S.2
Boisen, A.3
-
42
-
-
69049098146
-
Modification of the bulk properties of the porous poly (lactide-co-glycolide) scaffold by irradiation with a cyclotron ion beam with high energy for its application in tissue engineering
-
Woo JH, Klim DY, Jo SY, Kang H, Noh I. Modification of the bulk properties of the porous poly (lactide-co-glycolide) scaffold by irradiation with a cyclotron ion beam with high energy for its application in tissue engineering. Biomed Mater. 2009;4(4):044101.
-
(2009)
Biomed Mater.
, vol.4
, Issue.4
-
-
Woo, J.H.1
Klim, D.Y.2
Jo, S.Y.3
Kang, H.4
Noh, I.5
-
43
-
-
77954326607
-
Effects of process parameters on cell damage in a 3d cell printing process
-
Nov 13-19; Lake Buena Vista, Florida. New York: ASME; 2009
-
Yan KC, Paluch K, Nair K, Sun W. Effects of process parameters on cell damage in a 3d cell printing process. Proceedings of the ASME International Mechanical Engineering Congress and Exposition; 2009 Nov 13-19; Lake Buena Vista, Florida. New York: ASME; 2009. p. 75-81.
-
(2009)
Proceedings of the ASME International Mechanical Engineering Congress and Exposition
, pp. 75-81
-
-
Yan, K.C.1
Paluch, K.2
Nair, K.3
Sun, W.4
-
44
-
-
34547593173
-
Fabrication of diffraction encoded micro-particles using nano-imprint lithography
-
Banu S, Birtwell S, Galitonov G, Chen Y, Zheludev N, Morgan Y. Fabrication of diffraction encoded micro-particles using nano-imprint lithography. J Micromech Microeng. 2007;17(7):S116-21.
-
(2007)
J Micromech Microeng.
, vol.17
, Issue.7
, pp. S116-S121
-
-
Banu, S.1
Birtwell, S.2
Galitonov, G.3
Chen, Y.4
Zheludev, N.5
Morgan, Y.6
-
45
-
-
84861698425
-
Thermal Inkjet printing in tissue engineering and regenerative medicine
-
Cui XF, Boland T, D'Lima DD, Lotz MK. Thermal Inkjet printing in tissue engineering and regenerative medicine. Recent Pat Drug Deliv Formul. 2012;6(2):149-55.
-
(2012)
Recent Pat Drug Deliv Formul.
, vol.6
, Issue.2
, pp. 149-155
-
-
Cui, X.F.1
Boland, T.2
D'Lima, D.D.3
Lotz, M.K.4
-
46
-
-
84873806708
-
Inkjet printing of silver nano-suspensions on ceramic substrates- sintering temperature effect on electrical properties
-
Faddoul R, Reverdy-Bruas N, Blayo A, Khelifi B. Inkjet printing of silver nano-suspensions on ceramic substrates- sintering temperature effect on electrical properties. Microelectron Eng. 2013;105:31-9.
-
(2013)
Microelectron Eng.
, vol.105
, pp. 31-39
-
-
Faddoul, R.1
Reverdy-Bruas, N.2
Blayo, A.3
Khelifi, B.4
-
48
-
-
34249828915
-
Jet-based methods to print living cells
-
Ringeisen BR, Othon CM, Barron JA, Young D, Spargo BJ. Jet-based methods to print living cells. Biotechnol J. 2006;1(9):930-48.
-
(2006)
Biotechnol J.
, vol.1
, Issue.9
, pp. 930-948
-
-
Ringeisen, B.R.1
Othon, C.M.2
Barron, J.A.3
Young, D.4
Spargo, B.J.5
-
49
-
-
84897114349
-
Biocomposites reinforced by fibers or tubes as scaffolds for tissue engineering or regenerative medicine
-
Li XM, Yang Y, Fan YB, Feng QL, Cui FZ, Watari F. Biocomposites reinforced by fibers or tubes as scaffolds for tissue engineering or regenerative medicine. J Biomed Mater Res A. 2014;102(5): 1580-94.
-
(2014)
J Biomed Mater Res A.
, vol.102
, Issue.5
, pp. 1580-1594
-
-
Li, X.M.1
Yang, Y.2
Fan, Y.B.3
Feng, Q.L.4
Cui, F.Z.5
Watari, F.6
-
50
-
-
54949154117
-
Hybrid process for fabricating 3D hierarchical scaffolds combining rapid prototyping and electro-spinning
-
Kim G, Son J, Park S, Kim W. Hybrid process for fabricating 3D hierarchical scaffolds combining rapid prototyping and electro-spinning. Macromol Rapid Commun. 2008;29(19):1577-81.
-
(2008)
Macromol Rapid Commun.
, vol.29
, Issue.19
, pp. 1577-1581
-
-
Kim, G.1
Son, J.2
Park, S.3
Kim, W.4
-
51
-
-
73549091972
-
Piezoelectric micro-pump for drug delivery system fabricated using two optical masks
-
Johari J, Yunas J, Majlis BY. Piezoelectric micro-pump for drug delivery system fabricated using two optical masks. Adv Mater Res. 2009;74:279-82.
-
(2009)
Adv Mater Res.
, vol.74
, pp. 279-282
-
-
Johari, J.1
Yunas, J.2
Majlis, B.Y.3
-
53
-
-
40949113246
-
An electrochemical intraocular drug delivery device
-
Li PY, Shih J, Lo R, Saati S, Agrawal R, Humayun MS, Tai YC, Meng E. An electrochemical intraocular drug delivery device. Sens Actuators A Phys. 2008;143:41-8.
-
(2008)
Sens Actuators A Phys.
, vol.143
, pp. 41-48
-
-
Li, P.Y.1
Shih, J.2
Lo, R.3
Saati, S.4
Agrawal, R.5
Humayun, M.S.6
Tai, Y.C.7
Meng, E.8
-
54
-
-
84865455955
-
Optimization of 3D patterning by Ga implantation and reactive ion etching (RIE) for nanoimprint lithography (NIL) stamp fabrication
-
Waid S, Wanzenboeck HD, Muehlberger M, Bertagnolli E. Optimization of 3D patterning by Ga implantation and reactive ion etching (RIE) for nanoimprint lithography (NIL) stamp fabrication. Microelectron Eng. 2012;97:105-8.
-
(2012)
Microelectron Eng.
, vol.97
, pp. 105-108
-
-
Waid, S.1
Wanzenboeck, H.D.2
Muehlberger, M.3
Bertagnolli, E.4
-
55
-
-
33747620101
-
Polymers for tissue engineering, medical devices, and regenerative medicine. Concise general review of recent studies
-
Jagur-Grodzinski J. Polymers for tissue engineering, medical devices, and regenerative medicine. Concise general review of recent studies. Polym Adv Technol. 2006;17(6):395-418.
-
(2006)
Polym Adv Technol.
, vol.17
, Issue.6
, pp. 395-418
-
-
Jagur-Grodzinski, J.1
-
56
-
-
34547764903
-
Design and development of three-dimensional scaffolds for tissue engineering
-
Liu C, Xia Z, Czernuszka JT. Design and development of three-dimensional scaffolds for tissue engineering. Chem Eng Res Design. 2007;85(7):1051-64.
-
(2007)
Chem Eng Res Design.
, vol.85
, Issue.7
, pp. 1051-1064
-
-
Liu, C.1
Xia, Z.2
Czernuszka, J.T.3
-
57
-
-
77952759689
-
-
2010 IEEE 23rd International Conference on Micro Electro Mechanical Systems (MEMS), 2010, Jan 24-28, Wanchai, Hong Kong. New York: IEEE
-
Gensler H, Sheybani R, Li PY, Lo R, Zhu S, Yong KT, Roy I, Prasad PN, Masood R, Sinha UK, Meng E. Implantable MEMS drug delivery device for cancer radiation reduction. 2010 IEEE 23rd International Conference on Micro Electro Mechanical Systems (MEMS), 2010 Jan 24-28, Wanchai, Hong Kong. New York: IEEE; 2010. p. 23-6.
-
(2010)
Implantable MEMS drug delivery device for cancer radiation reduction.
, pp. 23-26
-
-
Gensler, H.1
Sheybani, R.2
Li, P.Y.3
Lo, R.4
Zhu, S.5
Yong, K.T.6
Roy, I.7
Prasad, P.N.8
Masood, R.9
Sinha, U.K.10
Meng, E.11
-
58
-
-
0037400556
-
Biocompatibility and biofouling of MEMS drug delivery devices
-
Voskerician G, Shive MS, Shawgo RS, Recum HV, Anderson JM, Cima MJ, Langer R. Biocompatibility and biofouling of MEMS drug delivery devices. Biomaterials. 2003;24(11):1959-67.
-
(2003)
Biomaterials.
, vol.24
, Issue.11
, pp. 1959-1967
-
-
Voskerician, G.1
Shive, M.S.2
Shawgo, R.S.3
Recum, H.V.4
Anderson, J.M.5
Cima, M.J.6
Langer, R.7
-
59
-
-
8544229900
-
In vivo release from a drug delivery MEMS device
-
Li Y, Shawgo RS, Tyler B, Henderson PT, Vogel JS, Rosenberg A, Storm PB, Langer R, Brem H, Cima MJ. In vivo release from a drug delivery MEMS device. J Control Release. 2004;100(2):211-9.
-
(2004)
J Control Release.
, vol.100
, Issue.2
, pp. 211-219
-
-
Li, Y.1
Shawgo, R.S.2
Tyler, B.3
Henderson, P.T.4
Vogel, J.S.5
Rosenberg, A.6
Storm, P.B.7
Langer, R.8
Brem, H.9
Cima, M.J.10
-
60
-
-
84922749921
-
-
[report on the Internet]. Belfast: Cleaver Fulton Rankin [cited 2014 Dec 6]
-
3D printing - An extra dimension to infringement of intellectual property rights? [report on the Internet]. Belfast: Cleaver Fulton Rankin [cited 2014 Dec 6]. Available from: http://www.cfrlaw.co.uk/fs/ doc/articles/3d-printing-an-extra-dimension-to-infringement-of-intellectual-property-rights.pdf.
-
3D printing - An extra dimension to infringement of intellectual property rights?
-
-
-
61
-
-
85051838438
-
-
editors. A symposium organized by four EU FP7 Projects and the JRC, 2012 May 3-4, San Sebastián, Spain. Ispra, Italy: European Commission, Joint Research Centre, Institute for health and Consumer Protection
-
Sintes JR, Blazquez M, Moya S, Vazquez S, editors. JRC technical reports. Safety issues and regulatory challenges of nanomaterials. A symposium organized by four EU FP7 Projects and the JRC, 2012 May 3-4, San Sebastián, Spain. Ispra, Italy: European Commission, Joint Research Centre, Institute for health and Consumer Protection; 2012.
-
(2012)
JRC technical reports. Safety issues and regulatory challenges of nanomaterials
-
-
Sintes, J.R.1
Blazquez, M.2
Moya, S.3
Vazquez, S.4
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