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1
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0010345767
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Development of a chronic neuroelectric interface
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Ph.D. thesis, U. C. Davis
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D. J. Edell, “Development of a chronic neuroelectric interface,” Ph.D. thesis, U. C. Davis, 1980.
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(1980)
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Edell, D.J.1
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2
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0020406095
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Biocompatibility of a silicon based peripheral nerve electrode
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D. J. Edell, J. N. Churchill, and I. M. Gourley, “Biocompatibility of a silicon based peripheral nerve electrode,” Biomat. Med. Dev. Art. Org., vol. 10, no. 2, pp. 103–122, 1982.
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(1982)
Biomat. Med. Dev. Art. Org.
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, Issue.2
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Edell, D.J.1
Churchill, J.N.2
Gourley, I.M.3
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3
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0022559394
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A peripheral nerve information transducer for amputees: Long-term multichannel recordings from rabbit peripheral nerves
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D. J. Edell, “A peripheral nerve information transducer for amputees: Long-term multichannel recordings from rabbit peripheral nerves,” IEEE Trans. Biomed. Eng., vol. 33, no. 2, pp. 203–213, 1986.
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IEEE Trans. Biomed. Eng.
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Edell, D.J.1
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4
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0022957237
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Optimization of electrode structure for chronic transduction of electrical neural signals
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presented at IEEE-EMBS 8th. Ann. Conf., Houston, TX, Nov. 1986f, Invited paper
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D. J. Edell, L. D. Clark, and V. M. McNeil, “Optimization of electrode structure for chronic transduction of electrical neural signals,” presented at IEEE-EMBS 8th. Ann. Conf., Houston, TX, Nov. 1986f, Invited paper.
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Edell, D.J.1
Clark, L.D.2
McNeil, V.M.3
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6
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0023548956
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Electrode spacing considerations for neural signal transducers
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presented at IEEE-EMBS 9th Ann. Conf., Boston, MA, Nov.
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L. D. Clark, Jr., and D. J. Edell, “Electrode spacing considerations for neural signal transducers,” presented at IEEE-EMBS 9th Ann. Conf., Boston, MA, Nov. 1987.
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(1987)
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Clark, L.D.1
Edell, D.J.2
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7
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84941435051
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Recording from neural sources in a volume: Analysis of selectivity for monopolar and bipolar differential electrodes
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to be published
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D. J. Edell and L. D. Clark, Jr., “Recording from neural sources in a volume: Analysis of selectivity for monopolar and bipolar differential electrodes,” IEEE Trans. Biomed. Eng., to be published.
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IEEE Trans. Biomed. Eng.
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Edell, D.J.1
Clark, L.D.2
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8
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0024077824
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Applied neural control in the 1990’s
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W. J. Heetderks and F. T. Hambrecht, “Applied neural control in the 1990’s,” Proc. IEEE, vol. 76, no. 9, pp. 1115–1121, 1988.
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Proc. IEEE
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Heetderks, W.J.1
Hambrecht, F.T.2
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9
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0002791341
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Biocompatibility of electrodes and materials in the central nervous system
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W. Agnew and D. McCreery, Eds. Englewood Cliffs, NJ: Prentice Hall
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T. G. H. Yuen, W. F. Agnew, L. A. Bullara, and D. B. McCreery, “Biocompatibility of electrodes and materials in the central nervous system,” in Neural Prostheses, W. Agnew and D. McCreery, Eds. Englewood Cliffs, NJ: Prentice Hall, 1990, pp. 197–223.
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Neural Prostheses
, pp. 197-223
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Yuen, T.G.H.1
Agnew, W.F.2
Bullara, L.A.3
McCreery, D.B.4
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10
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0017178865
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Long-term chronic recording from cortical neurons
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Schmidt, E.M.1
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Mcintosh, J.S.3
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11
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0015640131
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An evaluation of photoengraved microelectrodes for extracellular single-unit recording
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July
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A. Starr, K. Wise, and J. Csongradi, “An evaluation of photoengraved microelectrodes for extracellular single-unit recording,” IEEE Trans. Biomed. Eng., vol. 20, pp. 291–293, July 1973.
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IEEE Trans. Biomed. Eng.
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Starr, A.1
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12
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A low-capacitance multielectrode probe for use in extracellular neurophysiology
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May
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K. D. Wise and J. B. Angell, “A low-capacitance multielectrode probe for use in extracellular neurophysiology,” IEEE Trans. Biomed. Eng., vol. BME-22, pp. 212–219, May 1975.
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IEEE Trans. Biomed. Eng.
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Wise, K.D.1
Angell, J.B.2
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13
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0018040934
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Photolithographic fabrication and physiological performance of microelectrode arrays for neural stimulation
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Nov.
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D. Mercer and R. White, “Photolithographic fabrication and physiological performance of microelectrode arrays for neural stimulation,” IEEE Trans. Biomed. Eng., vol. BME-25, pp. 494–500, Nov. 1978.
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Mercer, D.1
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A tantalum-on-sapphire microelectrode array
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Dec.
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Flexible printed-circuit probe for electrophysiology
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R. Pickard. P. Joseph, A. Collins, and R. Hicks, “Flexible printed-circuit probe for electrophysiology,” Med. Biol. Eng. Computing, vol. 17, pp. 261–267, 1979.
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Med. Biol. Eng. Computing
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Pickard, R.1
Joseph, P.2
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0018594491
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A 16-fold semimicroelectrode for intracortical recording of field potentials
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O. Prohaska, F. Pacha, P. Pfundner, and H. Petsche, “A 16-fold semimicroelectrode for intracortical recording of field potentials,” Electroencephlog. clin. Neurophysiol., vol. 47, pp. 629–631, 1979.
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Prohaska, O.1
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A practical 24 channel microelectrode for neural recording in vivo
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Multichannel microelectrode for recording neural activity
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Integration of multi-microelectrode and interface circuits by silicon planar and three-dimensional fabrication technology
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Solid-state electrodes for multichannel multiplexed intracortical neuronal recording
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S. L. Bernent. K. D. Wise, D. J. Anderson, K. Najafi, and K. L. Drake, “Solid-state electrodes for multichannel multiplexed intracortical neuronal recording,” IEEE Trans. Biomed. Eng., vol. BME-33, pp. 230–241, Feb. 1986.
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NIH Prog. Rep. CN N01-NS-9-2326
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0025500717
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Charge density and charge per phase as cofactors in neural injury induced by electrical stimulation
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D. B. McCreery, W. F. Agnew, T. G. H. Yuen, and L. Bullara, “Charge density and charge per phase as cofactors in neural injury induced by electrical stimulation,” IEEE Trans. Biomed. Eng., vol. 37, pp. 996–1001, July 1990.
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0022991521
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Los Angeles, CA, Int. Electron Devices Meeting, Dec. Invited paper
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Cesium hydroxide (CsOH): a useful etchant for micromachining silicon
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L. D. Clark Jr., J. L. Lund, and D. J. Edell, “Cesium hydroxide (CsOH): a useful etchant for micromachining silicon,” presented at IEEE Solid State Sensors and Actuators Workshop, Hilton Head, SC, June 1988.
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Clark, L.D.1
Lund, J.L.2
Edell, D.J.3
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A method for pneumatically inserting an array of penetrating electrodes into cortical tissue
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