Biomedical Engineering Reference
In-Depth Information
38. Hatzor, A., and P.S. Weiss. 2001. Molecular rulers for scaling down nanostructures. Science
291(5506): 1019-1020.
39. For a contemporaneous snapshot of this field, see, for example, Fan, J.C.C., and J.M. Poate.
1986. Heteroepitaxy on Silicon. Materials Research Society Symposia Proceedings 67. Pitts-
burgh, Pa.: Materials Research Society.
40. Kapon, E., D.M. Hwang, and R. Bhat. 1989. Stimulated-emission in semiconductor quantum
wire heterostructures. Physical Review Letters 63(4): 430-433.
41. Zhou, Y.X., S. Luong, C.P. Hains, and J. Cheng. 1998. Oxide-confined monolithic, multiple-
wavelength vertical-cavity surface-emitting laser arrays with a 40-nm wavelength span. IEEE
Photonics Technology Letters 10(11): 1527-1529.
42. For a recent survey, see the special section on the growth of heterostructure materials on
nanoscale substrates, S.D. Hersee, D.A. Zubia and S.R.J. Brueck, eds. 2002. IEEE Journal of
Quantum Electronics 38(8).
43. Cui, Y. and C.M. Lieber. 2001. Functional nanoscale electronic devices assembled using sili-
con nanowire building blocks. Science: 291(5505): 851-853.
44. Duan, X.F., Y. Huang, Y. Cui, J.F. Wang, and C.M. Lieber. 2001. Indium phosphide nanowires
as building blocks for nanoscale electronic and optoelectronic devices. Nature 409(6816): 66-
69.
45. Gudiksen, M.S., L.J. Lauhon, J. Wang, D.C. Smith, and C.M. Lieber. 2002. Growth of nanowire
superlattice structures for photonics and electronics. Nature 415(6872): 617-620.
46. International Technology Roadmap for Semiconductors. 2001. Available online at <http://
public.itrs.net/> [July 3, 2002].
47. Moravec, H. 1998. When will computer hardware match the human brain? Available online at
<http://www.transhumanist.com/volume1/moravec.htm> [July 8, 2002].
48. Talghader, J.J., J.K. Tu, and J.S. Smith. 1995. Integration of fluidically self-assembled opto-
electronic devices using a silicon-based process. IEEE Photonics Technology Letters 7(11):
1321-1323.
49. Esener, S.C., D. Hartmann, M.J. Heller, and J.M. Cable. 1998. DNA-assisted microassembly:
A heterogeneous integration technology for optoelectronics. Paper # CR70-07 in Heteroge-
neous Integration: Systems on a Chip, Proceedings of SPIE, Volume CR70. A. Husain and M.
Fallahi, eds. Bellingham, Wash.: The International Society for Optical Engineering.
50. Hartmann, D.M., M. Heller, S.C. Esener, D. Schwartz, and G. Tu. 2002. Selective DNA attach-
ment of micro- and nanoscale particles to substrates. Journal of Materials Research 17(2): 473-
478.
51. Ozkan, M., C.S. Ozkan, O. Kibar, and S.C. Esener. 2000. Massively parallel low-cost pick-
and-place of optoelectronic devices by electrochemical fluidic processing. Optics Letters 25(17):
1285-1287.
52. Ozkan, M., C.S. Ozkan, O. Kibar, M.M. Wang, S. Bhatia, and S.C. Esener. 2001. Heteroge-
neous integration through electrokinetic movement. IEEE Engineering in Medicine and Biol-
ogy Magazine 20(6): 144-151.
53. Hartmann, D.M., O. Kibar, and S.C. Esener. 2001. Optimization and theoretical modeling of
polymer microlens arrays fabricated using the hydrophobic effect. Applied Optics 40(16): 2736-
2746.
54. Hartmann, D.M., D.J. Reiley, and S.C. Esener. 2001. Microlenses self-aligned to optical fibers
fabricated using the hydrophobic effect. IEEE Photonics Technology Letters 13(10): 1088-
1090.
55. Harper, C.A. 2000. Electronic Packaging and Interconnection Handbook, Third Edition. New
York, N.Y.: McGraw-Hill.
56. Gilleo, K. 2002. Area Array Packaging Handbook. New York, N.Y.: McGraw-Hill.
57. Kuo, W., W.T.K. Chien, and T. Kim. 1998. Reliability, Yield, and Stress Burn-In: A Unified
Approach for Microelectronics Systems Manufacturing and Software Development. Boston,
Mass.: Kluwer Academic Publishers.
Search WWH ::




Custom Search