“Single-crystal whiskers,” Biophotonics Int'l p. 64 (Nov./Dec. 1996). |
“101 Uses for Tiny Tubules,” Science 247 (1990). |
Amsden, et al., “Transdermal Delivery of Peptide and Protein Drugs: an Overview,” AIChE Journal 41(8):1972-1997 (1995). |
*Bronaugh & Maibach, Percutaneous Absorption, Mechanisms—Methodology—Drug Delivery (Marcel Dekker, New York 1989). |
Brumlik, et al., “Template Synthesis of Metal Microtubules,” J. Am. Chem. Soc. 113:3174-3175 (1991). |
*Despont, et al., “High-Aspect-Ratio, Ultrathick, Negative-Tone Near-UV Photoresist for MEMS,” Proc. of IEEE 10th Annual International Workshop on MEMS, Nagoya, Japan, pp. 518-522 (Jan. 26-30, 1997). |
Edell, et al., “Factors Influencing the Biocompatibility of Insertable Silicon Microshafts in Cerebral Cortex,” IEEE Transactions on Biomedical Engineering 39(6):635-43 (1992). |
Frazier, et al., “Two dimensional metallic microelectrode arrays for extracellular stimulation and recording of neurons”, IEEE Proceedings on the Micro Electro Mechanical Systems Conference, pp. 195-200 (1993). |
Frazier, et al., “Metallic Microstructures Fabricated Using Photosensitive Polyimide Electroplanting Molds,” Journal of Microelectromechanical Systems 2:87-97 (1993). |
*Hadgraft & Guy, eds., Transdermal Drug Delivery: Developmental Issues and Research Initiatives (Marcel Dekker New York 1989). |
Haga, et al., “Transdermal iontophoretic delivery of insulin using a photoetched microdevice,” J. Controlled Release 43:139-49 (1997). |
Hashmi, et al., “Genetic Transformation of Nematodes Using Arrays of Micromechanical Piercing Structures,” Bio Techniques 19(5):766-70 (1995). |
*Henry, et al., “Micromachined Needles for the Transdermal Delivery of Drugs,” Micro Electro Mechanical Systems, Heidelberg, Germany, pp. 494-498 (Jan. 26-29, 1998). |
*Henry, et al., “Microfabricated microneedles: A novel method to increase transdermal drug delivery,” J. Pharm. Sci. 87:922-925 (1998). |
*Hoffert, “Transcutaneous methods get under the skin,” The Scientist 12 (1998). |
*Jaeger, Introduction to Microelectronic Fabrication (Addison-Wesley Publishing Co., Reading MA 1988). |
Jansen, et al., “The Black Silicon Method IV: The Fabrication of Three-Dimensional Structures in Silicon with High Aspect Ratios for Scanning Probe Microscopy and Other Applications,” IEEE Proceedings of Micro Electro Mechanical Systems Conference, pp. 88-93 (1995). |
*Laermer, et al., “Bosch Deep Silicon Etching: Improving Uniformity and Etch Rate for Advanced MEMS Applications,” Micro Electro Mechanical Systems, Orlando, Fl, USA, (Jan. 17-21, 1999).l |
Langer, “Drug Delivery and Targeting,” Nature 392:5-10 (1998). |
Lehmann, “Porous Silicon—A New Material for MEMS”, IEEE Proceedings of the Micro Electro Mechanical Systems Conference, pp. 1-6 (1996). |
Lin, et al., “Silicon Processed Microneedles,” The 7th International Conference on Solid-State Sensors and Actuators 237-240 (1993). |
Martin, et al., “Template Synthesis of Organic Microtubules,” J. Am. Chem. Soc. 112:8976-8977 (1990). |
Najafi, et al., “Strength Characterization of Silicon Microprobes in Neurophysiological Tissues,” IEEE Transcriptions on Biomedical Engineering 37(5): 474-481 (1990). |
Prausnitz, “Reversible Skin Permeabilization for Transdermal Delivery of Macromolecules,” Critical Reviews in Therapeutic Drug Carrier Systems 37(5): 474-481 (1990). |
*Proceedings of the IEEE MIcro Electro Mechanical Systems Conference 1987-1998; Rai-Choudhury, ed., Handbook of Microlithography, Micromaching & Microfabrication (SPIE Optical Engineering Press, Bellingham, WA 1997). |
*Quan, “Plasma etch yields microneedle arrays,” Electronic Engineering Times 63:63-64 (1998). |
Reiss, “Glucose- and Blood-Monitoring Systems Vie for Top Spot,” Biophotonics Int'l, pp. 43-45 (1997). |
*Runyan, et al., Semiconductor Integrated Circuit Processing Technology, Addison-Wesley Publishing Co.:Reading, MA, 1990. |
*Schift, et al., “Fabrication of replicated high precision insert elements for micro-optical bench arrangements” Proc. SPIE—International Soc. Optical Engineer 3513:122-134 (1998). |
Talbot, et al., “Polymolding: Two Wafer Polysilicon Micromoding of Closed-Flow Passages for Microneedles and Microfluidic Devices,” Solid-State Sensor and Actuator Workshop Hilton Head Island, South Carolina, Jun. 8-11 266-268 (1988). |
Trimmer, et al., “Injection of DNA into Plant and Animal Tissues with Micromechanical Piercing Structures,” IEEE Proceedings of Micro Electro Mechanical Systems Conference, pp. 111-15 (1995). |
*Weber, et al., “Micromolding—a powerful tool for the large scale production of precise microstructures,” Proc. SPIE—International Soc. Optical Engineer 2879:156-167 (1996). |
Zuska, “Microtechnology Opens Doors to the Universe of Small Space,” Medical Device and Diagnostic Industry, p. 131 (1997). |