Biomedical Engineering Reference
In-Depth Information
[92] J. D. Hunn, N. R. Parikh, M. L. Swanson, and R. A. Zuhr, Conduction in ion-implanted single-
crystal diamond, Diam. Rel. Mater . 1993, 2, 847-851.
[93] B. R. Stoner, S. R. Sahaida, J. P. Bade, P. Southworth, and P. J. Ellis, Highly oriented, texture diamond
films on silicon via bias-enhanced nucleation and textured growth, J. Mater. Res . 1993, 8, 1334.
[94] J. G. Ran, C. Q. Zheng, J. Ren, and S. M. Hong, Properties and texture of B-doped diamond films
as thermal sensor, Diam. Rel. Mater . 1993, 2, 793-796.
[95] T. Sugino, Y. Muto, K. Karasutani, J. Shirafuji, and K. Kobashi, Trap states elucidated by A.C
conductance measurement in polycrystalline chemically vapour-deposited diamond films,
Diam. Rel. Mater . 1993, 2, 803-807.
[96] K. Miyata, and D. L. Dreifus, Effect of annealing in air on electrical resistance of B-doped poly-
crystalline diamond films, Jpn. J. Appl. Phys . 1994, 33, 4526-4533.
[97] M. I. Landstrass, and K. V. Ravi, Hydrogen passivation of electrically active defects in diamond,
Appl. Phys. Lett . 1989, 55, 1391-1393.
[98] Y. Mori, Y. Show, M. Deguchi, H. Yagi, H. Yagyu, N. Eimori, T. Okada, A. Hatta, K. Nishimura,
M. Kitabatake, T. Ito, T. Hirao, T. Izumi, T. Sasaki, and A. Hiraki, Characterization of surface
conductive diamond layer grown by microwave plasma chemical vapor deposition, Jpn. J. Appl.
Phys . 1993, 32, L987-L989.
[99] M. Werner, O. Dorsch, A. Hinze, E. Obermeier, R. E. Harper, C. Johnston, P. R. Chalker, and
I. M. Buckley-Golder, Space-charge-limited current flow and trap density in undoped diamond
films, Diam. Rel. Mater . 1993, 2, 825-828.
[100] B. Huang, and D. K. Reinhard, Electric field-dependent conductivity of polycrystalline dia-
mond thin films, Appl. Phys. Lett . 1991, 59, 1494-1496.
[101] P. Extance, S. R. Elliott, and E. A. Davis, Frequency-dependent conductivity in sputtered amor-
phous phosphorus thin film, Phys. Rev. B 1985, 32, 8184.
[102] D. M. Malta, J. A. Windheim, H. A. Wynands and B. A. Fox, Comparison of the electric prop-
erties of simultaneously deposited homoepitaxial and polycrystalline diamond films, J. Appl.
Phys . 1995, 77, 1536.
[103] B. Fiegl, R. Kuhnert, M. Ben-Chorin, and F. Koch, Evidence for grain boundary hopping trans-
port in polycrystalline diamond films, Appl. Phys. Lett . 1994, 65, 371-371.
[104] J. Chen, S. Z. Deng, J. Chen, Z. X. Yu, and N. S. Xu, Graphitization of nanodiamond powder
annealed in argon ambient, Appl. Phys. Lett . 1999, 74, 3651.
[105] H. Hirai, K. Kondo, M. Kim, and H. Koinuma, Transparent nanocrystalline diamond ceramics
fabricated from C 60 fullerene by shock compression, Appl. Phys. Lett . 1997, 71, 3016.
[106] C. Q. Sun, H. Xie, W. Zhang, H. Ye, and P. Hing, Preferential oxidation of diamond {111}, J. Phys.
D: Appl. Phys . 2000, 33, 2196.
[107] R. Heidinger, and A. Kumlin, The impact of extrinsic conductivity on the mm-wave dielectric
loss in high resistivity silicon, 16th Internat. Conf. on Infrared and Millimeter Waves, Lausanne,
Aug. 26-30, Conf. Digest Lausanne: Ecole Polytechnique 1576. 1991, 450-451.
[108] C. E. Nebel, and J. Ristein, Thin Film Diamond: I 76, 2003.
[109] C. E. Nebel, and J. Ristein, Thin Film Diamond: I 77 , 2004.
[110] O. A. Williams, S. Curat, J. E. Gerbi, D. M. Gruen, and R. B. Jackman, n -type conductivity in
ultrananocrystalline diamond films, Appl. Phys. Lett . 2004, 85, 1680.
[111] P. W. May, Diamond thin films: a 21st-century material , Philosophical Transactions of The Royal
Society A: Mathematical Physical & Engineering Sciences 2000, 358, 473.
[112] J. C. Angus, Y. V. Pleskov, and S. C. Eaton, Chapter 3 Electrochemistry of diamond , Semiconductors
and Semimetals 2004, 77, 97-119.
[113] A. Fujishima, Y. Einaga, and T. N. Rao, Diamond Electrochemistry , Elsevier, 2005.
[114] A. B. Kharitonov, L. Alfonta, E. Katz, and I. Willner, Probing of bioaffinity interactions at
interface using impedance spectroscopy and Chronopotentiometry. J. Electro. Chem . 2000, 487,
133-141.
[115] L. Alfonta, E. Katz, and I. Willner, Sensing of acetylcholine by a tricomponent-enzyme layered
electrode using faradic impedance spectroscopy, cyclic voltammetry, and microgravimetric
quarts crystal microbalance transduction method, Anal. BioChem . 2000, 75, 927-935.
Search WWH ::




Custom Search