Publications
Found 468 results
Author Title Type [ Year
Filters: First Letter Of Last Name is G [Clear All Filters]
15 Immunological Biosensors. The Immunoassay Handbook 265 (2005).
Analysis of type IV pilus and its associated motility in Myxococcus xanthus using an antibody reactive with native pilin and pili. Microbiology 151, 353–360 (2005).
CELL AND DEVELOPMENTAL BIOLOGY-Analysis of type IV pilus and its associated motility in Myxococcus xanthus using an antibody reactive with native pilin and pili. Microbiology-Reading 151, 353–360 (2005).
Methods and devices for determining a cell characteristic, and applications employing the same. (2005).
Nanoscale visualization and characterization of Myxococcus xanthus cells with atomic force microscopy. Proceedings of the National Academy of Sciences of the United States of America 102, 6484–6489 (2005).
Time dependence of the frequency and amplitude of the local nanomechanical motion of yeast. Nanomedicine: Nanotechnology, Biology and Medicine 1, 178–183 (2005).
Time dependence of the frequency and amplitude of the local nanomechanical motion of yeast. Nanomedicine: Nanotechnology, Biology and Medicine 1, 178–183 (2005).
CANTILEVER SENSORS AND TRANSDUCERS. (2004).
. CANTILEVER SENSORS AND TRANSDUCERS. (2004).
. Cell Biology: Local Nanomechanical Motion of the Cell Wall of Saccharomyces cerevisiae. SCIENCE-NEW YORK THEN WASHINGTON- 1147–1149 (2004).
Cell Biology: Local Nanomechanical Motion of the Cell Wall of Saccharomyces cerevisiae. SCIENCE-NEW YORK THEN WASHINGTON- 1147–1149 (2004).
Complementary TEM and AFM force spectroscopy to characterize the nanomechanical properties of nanoparticle chain aggregates. Nano letters 4, 2287–2292 (2004).
. LIGHT-EMITTING APPARATUS. (2004).
LIGHT-EMITTING APPARATUS. (2004).
Local nanomechanical motion of the cell wall of Saccharomyces cerevisiae. Science 305, 1147–1150 (2004).
Local nanomechanical motion of the cell wall of Saccharomyces cerevisiae. Science 305, 1147–1150 (2004).
The Nanomeme Syndrome: concerning mechanistic visions of control at a molecular scale. Horizon Zero (2004).
Comment on" Single Crystals of Single-Walled Carbon Nanotubes Formed by Self-Assembly". Science 300, 1236–1236 (2003).
Direct determination of the energy required to operate a single molecule switch. Physical review letters 90, 066107 (2003).
Direct determination of the energy required to operate a single molecule switch. Physical review letters 90, 066107 (2003).
.
James Gimzewski discusses the potential of nanobiotechnology. Interview by Rebecca N. Lawrence. Drug discovery today 7, 18–21 (2002).
CANTILEVER SENSORS AND TRANSDUCERS. (2001).
CANTILEVER SENSORS AND TRANSDUCERS. (2001).
A chemical sensor based on a microfabricated cantilever array with simultaneous resonance-frequency and bending readout. Sensors and Actuators B: Chemical 77, 122–131 (2001).
A chemical sensor based on a microfabricated cantilever array with simultaneous resonance-frequency and bending readout. Sensors and Actuators B: Chemical 77, 122–131 (2001).
A chemical sensor based on a microfabricated cantilever array with simultaneous resonance-frequency and bending readout. Sensors and Actuators B: Chemical 77, 122–131 (2001).
Forces with submolecular resolution between the probing tip and Cu-TBPP molecules on Cu (100) observed with a combined AFM/STM. Applied Physics A 72, S105–S108 (2001).
Forces with submolecular resolution between the probing tip and Cu-TBPP molecules on Cu (100) observed with a combined AFM/STM. Applied Physics A 72, S105–S108 (2001).
Forces with submolecular resolution between the probing tip and Cu-TBPP molecules on Cu (100) observed with a combined AFM/STM. Applied Physics A 72, S105–S108 (2001).
Single crystals of single-walled carbon nanotubes formed by self-assembly. Science 292, 1136–1139 (2001).
Molecular Machines and Motors 1–18 (Springer Berlin Heidelberg, 2001).
. Synthesis of molecular-gripper-type dynamic receptors and STM-imaging of self-assembled monolayers on gold. Journal of Materials Chemistry 11, 2895–2897 (2001).