Active solid-state devices (e.g. – transistors – solid-state diode – Organic semiconductor material
Reexamination Certificate
2005-09-20
2005-09-20
Jackson, Jerome (Department: 2815)
Active solid-state devices (e.g., transistors, solid-state diode
Organic semiconductor material
C257S213000, C257S565000, C257S746000, C438S099000, C438S001000
Reexamination Certificate
active
06946675
ABSTRACT:
A microelectronic network is fabricated on a fibrous skeleton by binding or complexing electronically functional substances to the nucleic acid skeleton. The skeleton comprises fibers with nucleotide chains. The assembly of the fibers into a network is based on interactions of nucleotide chain portions of different fibers.
REFERENCES:
patent: 3833894 (1974-09-01), Aviram et al.
patent: 4314821 (1982-02-01), Rice
patent: 4822566 (1989-04-01), Newman
patent: 5063417 (1991-11-01), Hopfield
patent: 5089545 (1992-02-01), Pol
patent: 5284748 (1994-02-01), Mroczkowski et al.
patent: 5312527 (1994-05-01), Mikkelsen et al.
patent: 5445934 (1995-08-01), Fodor et al.
patent: 5561043 (1996-10-01), Cantor et al.
patent: 5561071 (1996-10-01), Hollenberg et al.
patent: 5563424 (1996-10-01), Yang et al.
patent: 5653959 (1997-08-01), Hollis et al.
patent: 5705348 (1998-01-01), Meade et al.
patent: 5707845 (1998-01-01), Ueyama et al.
patent: 5739308 (1998-04-01), Kandimalla et al.
patent: 5770369 (1998-06-01), Meade et al.
patent: 5780234 (1998-07-01), Meade et al.
patent: 5787332 (1998-07-01), Heller et al.
patent: 5824473 (1998-10-01), Meade et al.
patent: 5837546 (1998-11-01), Allen et al.
patent: 5858659 (1999-01-01), Sapolsky et al.
patent: 5874046 (1999-02-01), Megerle
patent: 5876976 (1999-03-01), Richards et al.
patent: 5891630 (1999-04-01), Eggers et al.
patent: 5914505 (1999-06-01), Hisada et al.
patent: 5946550 (1999-08-01), Papadimitrakopoulos
patent: 5948897 (1999-09-01), Sen et al.
patent: 5952172 (1999-09-01), Meade et al.
patent: 5965133 (1999-10-01), Cantor et al.
patent: 5985550 (1999-11-01), Goodman et al.
patent: 6013170 (2000-01-01), Meade
patent: 6051380 (2000-04-01), Sosnowski et al.
patent: 6060023 (2000-05-01), Maracas
patent: 6071699 (2000-06-01), Meade et al.
patent: 6087100 (2000-07-01), Meade et al.
patent: 6093370 (2000-07-01), Yasuda et al.
patent: 6210880 (2001-04-01), Lyamichev et al.
patent: 6248529 (2001-06-01), Connolly
patent: 6291188 (2001-09-01), Meade et al.
patent: 6399303 (2002-06-01), Connolly
patent: 0 364 208 (1990-04-01), None
patent: 0 444 840 (1991-09-01), None
patent: 04-148669 (1992-05-01), None
patent: WO 90/05300 (1990-05-01), None
patent: WO 93/25003 (1993-12-01), None
patent: WO 94/05045 (1994-03-01), None
patent: WO 95/20320 (1995-08-01), None
patent: WO 96/30508 (1996-10-01), None
patent: WO 97/44651 (1997-11-01), None
patent: WO 98/31839 (1998-07-01), None
patent: WO 98/53841 (1998-12-01), None
patent: WO 99/29711 (1999-06-01), None
patent: WO 99/35256 (1999-07-01), None
patent: WO 99/36573 (1999-07-01), None
patent: WO 99/57550 (1999-11-01), None
patent: WO 99/60165 (1999-11-01), None
patent: WO 00/25136 (2000-05-01), None
Ackley et alIEEEDNA . . . “Optoelectronics”, Apr. 1998.
J. L. Coffer et al., “Dictation of the Shape of Mesoscale Semiconductor Nanoparticle Assemblies by Plasmid DNA”, Appl. Phys. Lett. 69 (25), Dec. 16, 1996, pp. 3851-3853.
D. B. Hall et al., “Oxidative DNA Damage Through Long-range Electron Transfer”, Nature, vol. 382, Aug. 22, 1996, pp. 731-735.
E. Braun et al., “DNA-templated Assembly and Electrode Attachment of a Conducting Silver Wire”, Nature, Feb. 19, 1998, vol. 291, pp. 775-778.
C. Mirkin et al., “A DNA-based Method for Rationally Assembling into Macroscopic Materials”, Nature, vol. 382, Aug. 15, 1996, pp. 607-609.
A. P. Alivisatos et al., “Organization of ‘Nanocrystal Molecule’ Using DNA”, Nature, vol. 382, Aug. 15, 1996, pp. 609-611.
Size,Physics of Semiconductor Devices,2ndEd., pp. 349, 490-495 (date unknown).
Klein et al., “An Approach to Electrical Studies of Single Nanocrystals,”Appl. Phys. Lett.,68(18):2574-2576 (1996).
Sato et al., “Single Electron Transistor Using a Molecularly Linked Gold Colloidal Particle Chain,”J. Appl. Phys.,82(2):696-701 (1997).
Grabar et al., “Kinetic Control of Interparticle Spacing in Au Colloid-Based Surfaces: Rational Nanometer-Scale Architecture,”J. Am. Chem Soc.,118:1148-1153 (1996).
Chen et al., “Synthesis from DNA of a Molecule with the Connectivity of a Cube,”Nature,350:631-633 (1991).
Fink et al., “Electrical Conduction Through DNA Molecules,”Nature,398:407-410 (1999).
Averin et al., “Single Electronics: A Correlated Transfer of Single Electrons and Cooper Pairs in Systems of Small Tunnel Junctions,” in Altshuler, eds.,Mesoscopic Phenomena in Solids,New York, New York:Elsevier Science Publishing Company, Inc., pp. 173-271 (1991).
Kastner, “The Single-Electron Transistor,”Reviews of Modern Physics,64(3):849-858 (1992).
Porath et al., “Single Electron Tunneling and Level Spectroscopy of Isolated C60Molecules,”J. Appl. Phys.,81(5):2241-2244 (1997).
Meirav et al., “Single-Electron Phenomena in Semiconductors,”Semicond. Sci. Technol.,11:255-284 (1996).
Kouwenhoven et al., “Introduction to Mesoscopic Electron Transport,” in Sohn, eds.,Mesoscopic Electron Transport,The Netherlands:Kluwer Academic Publishers, pp. 1-44 (1997).
Langer et al., “Quantum Transport in a Multiwalled Carbon Nanotube,”Physical Review Letters,76(3):479-482 (1996).
Bensimon et al., “Stretching DNA with a Receding Meniscus: Experiments and Models,”Physical Review Letters,74(23):4754-4757 (1995).
Bensimon et al., “Alignment and Sensitive Detection of DNA by a Moving Interface,”Science,265:2096-2098 (1994).
Wirtz, “Direct Measurement of the Transport Properties of a Single DNA Molecule,”Physical Review Letters,75(12):2436-2439 (1995).
Zimmerman et al., “DNA Stretching on Functionalized Gold Surfaces,”Nucleic Acids Res.,22(3):492-497 (1994).
Barton, “Metal/Nucleic-Acid Interactions,” in Bertini, eds.,Bioorganic Chemistry,Sausalito, California:University Science Books, pp. 455-503 (1994).
Marzilli et al., “An Extension of the Role of O(2) of Cytosine Residues in the Binding of Metal Ions, Synthesis and Structure of an Unusual Polymeric Silver(I) Complex of 1-Methylcytosine,”J. Am. Chem. Soc.,99(8):2797-2798 (1977).
Eichorn, “Complexes of Nucleosides and Nucleotides,” in Eichhorn, eds.,Inorganic Biochemistry,vols. 1 and 2, New York, New York:American Elsevier Publishing Company, pp. 1191-1243 (1973).
Roberts, “A New Procedure for the Detection of Gold in Animal Tissues: Physical Development,”Proceedings of the Section of Sciences,vol. XXXVIII, Amsterdam:N.V. Noord-Hollandsche Uitgeversmaatschappij, pp. 540-544 (1935).
Holgate et al., “Immunogold-Silver Staining: New Method of Immunostaining with Enhanced Sensitivity,”J. Histochem. and Cytochem.,31(7):938-944 (1983).
Danscher et al., “Light Microscopic Visualization of Colloidal Gold on Resin-Embedded Tissue,”J. Histochem. and Cytochem.,31(12):1394-1398 (1983).
Mueller et al., “Design and Synthesis of a Knot from Single-Stranded DNA,”J. Am. Chem. Soc.,113(16):6306-6308 (1991).
Du et al., “Synthesis of a DNA Knot Containing Both Positive and Negative Nodes,”J. Am. Chem. Soc.,114:9652-9655 (1992).
Seeman et al., “Synthetic DNA Knots and Catenanes,”New J. Chem.,17:739-755 (1993).
Kallenbach et al., “An Immobile Nucleic Acid Junction Constructed from Oligonucleotides,”Nature,305:829-831 (1983).
Goffeau, “Molecular Fish on Chips,”Nature,385:202-203 (1997).
Birrell et al., “Silver-Enhanced Colloidal Gold as a Cell Surface Marker for Photoelectron Microscopy,”J. Histochem. and Cytochem.,34(3):339-345 (1986).
Danscher, “Localization of Gold in Biological Tissue. A Photochemical Method for Light and Electromicroscopy,”Histochem.,71:81-88 (1981).
Scopsi et al., “Increased Sensitivity in Immunocytochemistry. Effects of Double Application of Antibodies and of Silver Intensification on Immunogold and Peroxidase-Antiperoxidase Staining Techniques,”Histochem.,82:321-329 (1995).
Ben-Joseph Gdalyahu
Braun Erez
Eichen Yoav
Sivan Uri
Jackson Jerome
Nixon & Peabody LLP
Technion Research & Development Foundation Ltd.
LandOfFree
Microelectronic components and electronic networks... does not yet have a rating. At this time, there are no reviews or comments for this patent.
If you have personal experience with Microelectronic components and electronic networks..., we encourage you to share that experience with our LandOfFree.com community. Your opinion is very important and Microelectronic components and electronic networks... will most certainly appreciate the feedback.
Profile ID: LFUS-PAI-O-3424799