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https://www.sciencedirect.com/science/article/pii/S0142961202005653
The biocompatibility and biofouling of the microfabrication materials for a MEMS drug delivery device have been evaluated. The in vivo inflammatory and wound healing response of MEMS drug delivery component materials, metallic gold, silicon nitride, silicon dioxide, silicon, and SU-8 TM photoresist, were evaluated using the cage implant system. . Materials, placed into stainless-steel cages ...Author: Gabriela Voskerician, Matthew S. Shive, Rebecca S. Shawgo, Horst A Von Recum, James M Anderson, Mich...
https://www.semanticscholar.org/paper/Biocompatibility-and-biofouling-of-MEMS-drug-Voskerician-Shive/bde87aef04aad3053b3bac15dbc3ff3ab4e61f4d
The biocompatibility and biofouling of the microfabrication materials for a MEMS drug delivery device have been evaluated. The in vivo inflammatory and wound healing response of MEMS drug delivery component materials, metallic gold, silicon nitride, silicon dioxide, silicon, and SU-8(TM) photoresist, were evaluated using the cage implant system.
https://www.researchgate.net/publication/10874201_Biocompatibility_and_biofouling_of_MEMS_drug_delivery_device
The biocompatibility and biofouling of the microfabrication materials for a MEMS drug delivery device have been evaluated. The in vivo inflammatory and wound healing response of MEMS drug delivery ...
https://www.sciencedirect.com/science/article/pii/S0169409X17302429
Liu, et al. devised a refillable MEMS drug delivery device which consisted of electrodes for actuation, a drug reservoir, and a cannula . Metal electrodes for the actuation were fabricated on a silicon wafer while the 10-mm-long, 10-mm-wide, and 2-mm-thick drug reservoir was fabricated using an SU-8 photoresist.Author: Hyunjoo J. Lee, Nakwon Choi, Nakwon Choi, Eui-Sung Yoon, Il-Joo Cho, Il-Joo Cho
https://www.academia.edu/6186197/Biocompatibility_and_biofouling_of_MEMS_drug_delivery_devices
Biocompatibility and biofouling of MEMS drug delivery devices
http://clifton.mech.northwestern.edu/~me381/project/done/BioMEMS.pdf
devices can be actuated such that the drug is released continuously, periodically, or selectively by the doctor or patient. Thus, very complex dosing patterns can be achieved. MEMS devices hold a great deal of promise in the area of transdermal drug delivery techniques as well. Transdermal drug delivery systems that are currently available are
https://www.deepdyve.com/lp/elsevier/biocompatibility-and-biofouling-of-mems-drug-delivery-devices-eob0hqC9OB
May 01, 2003 · Read "Biocompatibility and biofouling of MEMS drug delivery devices, Biomaterials" on DeepDyve, the largest online rental service for scholarly research with thousands of academic publications available at your fingertips.
https://saliterman.umn.edu/sites/saliterman.dl.umn.edu/files/general/biocompatibility_fda_and_iso_10993.pdf
Biocompatibility, FDA and ISO 10993 ... Biosensors, integrated smart stents, advanced drug delivery systems, and actuator driven devices in ... et al., Biocompatibility and biofouling of MEMS drug delivery devices. Biomaterials 24(11), 2003 . Steven S. Saliterman Cellular response to implanted materials…
https://www.researchgate.net/publication/224052963_Review_article_Biofouling_Lessons_from_nature
An ideal implantable drug-delivery device is small, resists biofouling (for example, by protective reserv oirs), allows liquid or solid drug delivery and is controllable b y healthcare workers ...
https://royalsocietypublishing.org/doi/full/10.1098/rsta.2011.0502
May 28, 2012 · Such devices often require biosensors, which limit the long-term operation owing to biofouling of electrode surfaces or membranes. An ideal implantable drug-delivery device is small, resists biofouling (for example, by protective reservoirs), allows liquid or solid drug delivery and is controllable by healthcare workers [68,69].Author: Gregory D. Bixler, Bharat Bhushan
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