254 research outputs found
Nanoscale field effect transistor for biomolecular signal amplification
We report amplification of biomolecular recognition signal in lithographically defined silicon nanochannel devices. The devices are configured as field effect transistors (FET) in the reversed source-drain bias region. The measurement of the differential conductance of the nanowire channels in the FET allows sensitive detection of changes in the surface potential due to biomolecular binding. Narrower silicon channels demonstrate higher sensitivity to binding due to increased surface-to-volume ratio. The operation of the device in the negative source-drain region demonstrates signal amplification. The equivalence between protein binding and change in the surface potential is described
Phase cascade lattice rectifier array: an exactly solvable nonlinear network circuit
An exact analysis of a 2-D lattice network consisting of N × N sites with rectifier and AC source elements with controllable phases reveals a method for generating ripple-free DC power without the use of any filtering circuit elements. A phase cascade configuration is described in which the current ripple in a load resistor goes to zero in the large N limit, enhancing the rectification efficiency without requiring any additional capacitor or inductor based filters. The integrated modular configuration is qualitatively different from conventional rectenna arrays in which the source, rectifier and filter systems are physically disjoint. Nonlinear networks in the large N limit of source-rectifier arrays are potentially of interest to a fast evolving field of distributed power networks.MNacknowledges support from a Graduate Fellowship in the ECE department at Boston University. We thank CMaedler, R Averitt, and members of the Photonics Center staff for assistance. JC acknowledges support from the Boston University RISE summer program. (Graduate Fellowship in the ECE department at Boston University; Boston University RISE summer program)Published versio
Femtosecond photonic viral inactivation probed using solid-state nanopores
We report on detection of virus inactivation using femtosecond laser radiation by measuring the
conductance of a solid state nanopore designed for detecting single particles. Conventional methods
of assaying for viral inactivation based on plaque forming assays require 24–48 h for bacterial growth.
Nanopore conductance measurements provide information on morphological changes at a single
virion level.We show that analysis of a time series of nanopore conductance can quantify the detection
of inactivation, requiring only a few minutes from collection to analysis. Morphological changes were
verified by dynamic light scattering. Statistical analysis maximizing the information entropy provides
a measure of the log reduction value. This work provides a rapid method for assaying viral inactivation
with femtosecond lasers using solid-state nanopores.First author draf
Pressure Induced Hydration Dynamics of Membranes
Pressure-jump initiated time-resolved x-ray diffraction studies of dynamics
of the hydration of the hexagonal phase in biological membranes show that (i)
the relaxation of the unit cell spacing is non-exponential in time; (ii) the
Bragg peaks shift smoothly to their final positions without significant
broadening or loss in crystalline order. This suggests that the hydration is
not diffusion limited but occurs via a rather homogeneous swelling of the whole
lattice, described by power law kinetics with an exponent .Comment: REVTEX 3, 10 pages,3 figures(available on request),#
Pressure Induced Topological Phase Transitions in Membranes
Some highly unusual features of a lipid-water liquid crystal are revealed by
high pressure x-ray diffraction, light scattering and dilatometric studies of
the lamellar (bilayer ) to nonlamellar inverse hexagonal ()
phase transition. (i) The size of the unit cell of the phase increases
with increasing pressure. (ii) The transition volume, ,
decreases and appears to vanish as the pressure is increased. (iii) The
intensity of scattered light increases as decreases. Data are
presented which suggest that this increase is due to the formation of an
intermediate cubic phase, as predicted by recent theoretical suggestions of the
underlying universal phase sequence.Comment: 12 pages, typed using REVTEX 2.
Traffic on complex networks: Towards understanding global statistical properties from microscopic density fluctuations
We study the microscopic time fluctuations of traffic load and the global statistical properties of a dense traffic of particles on scale-free cyclic graphs. For a wide range of driving rates R the traffic is stationary and the load time series exhibits antipersistence due to the regulatory role of the superstructure associated with two hub nodes in the network. We discuss how the superstructure affects the functioning of the network at high traffic density and at the jamming threshold. The degree of correlations systematically decreases with increasing traffic density and eventually disappears when approaching a jamming density Rc. Already before jamming we observe qualitative changes in the global network-load distributions and the particle queuing times. These changes are related to the occurrence of temporary crises in which the network-load increases dramatically, and then slowly falls back to a value characterizing free flow
Femtosecond Photonic Viral Inactivation Probed Using Solid-State Nanopores
We report on the detection of inactivation of virus particles using
femtosecond laser radiation by measuring the conductance of a solid state
nanopore designed for detecting single virus particles. Conventional methods of
assaying for viral inactivation based on plaque forming assays require 24-48
hours for bacterial growth. Nanopore conductance measurements provide
information on morphological changes at a single virion level. We show that
analysis of a time series of nanopore conductance can quantify the detection of
inactivation, requiring only a few minutes from collection to analysis.
Morphological changes were verified by Dynamic Light Scattering (DLS).
Statistical analysis maximizing the information entropy provides a measure of
the Log-reduction value. Taken together, our work provides a rapid method for
assaying viral inactivation with femtosecond lasers using solid-state
nanopores.Comment: 6 Figures with caption
- …