1 History of Bio-microelectromechanical Systems (BioMEMS)
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References
Bashir R (2004) BioMEMS: state-of-the-art in detection, opportunities and prospects. Elsevier
Bates JA (1963) Special investigation techniques: indwelling electrodes and electrocorticography
Bergveld P (1972) Development, operation, and application of the ion-sensitive field-effect transistor
as a tool for electrophysiology. https://ieeexplore.ieee.org/Xplore/home.jsp
Borenstein JT (2008) BioMEMS technologies for regenerative medicine. https://www.cambridge.
org/
Burns MA et al (1998) An integrated nanoliter DNA analysis device
Carter SB (1963) Haptotactic islands a method of confining single cells to study individual cell
reactions and clone formation
Choi K, Ng A (2012) Digital microfluidics. https://www.annualreviews.org/
Cima MJ (Jul.) Microsystem technologies for medical applications. Annu Rev Chem Biomol Eng
2(1):355–378. https://doi.org/10.1146/annurev-chembioeng-061010-114120
Clark LC, Lyons C (1962) Electrode systems for continuous monitoring in cardiovascular surgery.
Ann NY Acad Sci 102(1):29–45. https://doi.org/10.1111/j.1749-6632.1962.tb13623.x
Clark GM, Black R, Dewhurst DJ, Forster IC, Patrick JF, Tong YC (1977) A multiple-electrode
hearing prosthesis for cochlear implantation in deaf patients. Springer-Verlag
Cooper S (2016) BioMEMS market analysis, market size, application analysis, regional outlook,
competitive strategies and forecasts, 2016–2024. Hexa Res: 90
Council NR (1998) Microelectromechanical systems: advanced materials and fabrication methods
Duffy DC, Mcdonald JC, Schueller OJ, Whitesides GM (1998) Rapid prototyping of microfluidic
systems in poly(dimethylsiloxane). https://doi.org/10.1021/ac980656z
Experts I (2019) Global BioMEMS devices market overview 2016–2022—home care devices. In:
Vitro diagnostics, medical devices and pharmaceutical and biological research
Fan ZH, Harrison DJ (1994) Micromachining of capillary electrophoresis injectors and separators
on glass chips and evaluation of flow at capillary intersections. Anal Chem 66(1):177–184. https://
doi.org/10.1021/ac00073a029
Fatt P, Katz B (1951) An analysis of the end-plate potential recorded with an intra-cellular electrode
Folch A (2016) Introduction to bioMEMS
Free AH et al. (1956) Simple specific test for urine glucose
Gerstel MS, Place VA (1976) United States Paten Gerstel et al. (19) (54) 75 Drug delivery device
Gross G, Rieske E, Kreutzberg G (1977) A new fixed-array multi-microelectrode system designed
for long-term monitoring of extracellular single unit neuronal activity in vitro. Elsevier
Henry S et al (1998) Microfabricated microneedles: a novel approach to transdermal drug delivery.
J Pharm Sci 87(8):922–925
I. Hochmair-Desoyer, Hochmair ES, Burian K, Stiglbrunner HK (1983) Percepts from the Vienna
cochlear prosthesis. https://psycnet.apa.org/
Hoch, HC, Staples RC, Whitehead B, Comeau J, Wolf ED (1987) Signaling for growth orientation
and cell differentiation by surface topography in Uromyces. https://science.sciencemag.org/
Holy TE, Dogterom M, Yurke B, Leibler S (1997) Assembly and positioning of microtubule asters
in microfabricated chambers. Natl Acad Sci 94(12):6228:6231
Jones G, Kraft A (2004) Corporate venturing: The origins of unilever’s pregnancy test. Bus Hist
46(1):100–122. https://doi.org/10.1080/00076790412331270139
Kenis PJA, Ismagilov RF, Whitesides (1999) GM Microfabrication inside capillaries using
multiphase laminar flow patterning
Konstantinov I, Alexi-Meskishvili, VV, Williams WG, Freedom RM, Van Praagh R (2004) Atrial
switch operation: past, present, and future. Elsevier
Kricka LJ, Nozaki O, Heyner S, Garside WT, Wilding P (1993) Applications of a microfabricated
device for evaluating sperm function. https://academic.oup.com/journals
Lewis RA (1997) Gamera Bioscience Corp. develops lab on a disc for genetic disease testing. Mary
Ann Liebert Inc. Publ 2
Madou M (2011) Manufacturing techniques for microfabrication and nanotechnology.
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