Search Results - "Einziger, P.D."

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  1. 1

    Enhanced heat deposition using ultrasound contrast agent - modeling and experimental observations by Razansky, D., Einziger, P.D., Adam, D.R.

    “…Ultrasound contrast agents (UCA), created originally for visualization and diagnostic purposes, recently have been suggested as efficient enhancers of…”
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    Journal Article
  2. 2

    Reconstruction of Layered Biological Tissues via Electrical Impedance Tomography by Dolgin, Madlena, Einziger, Pinchas D.

    “…The reconstruction of layered biological tissues, via electrical impedance tomography, is carried out by utilizing two alternative linear transformations,…”
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    Journal Article
  3. 3

    Generalized cable equation model for myelinated nerve fiber by Einziger, P.D., Livshitz, L.M., Mizrahi, J.

    “…Herein, the well-known cable equation for nonmyelinated axon model is extended analytically for myelinated axon formulation. The myelinated membrane…”
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    Journal Article
  4. 4

    Cavity plasmon resonance biosensing by Razansky, D., Einziger, P.D., Adam, D.

    Published in IEEE transactions on nanotechnology (01-09-2008)
    “…Surface plasmon resonance (SPR) spectroscopy has demonstrated unprecedented performance in label-free real-time probing of various biopolymer, ligand, protein,…”
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    Journal Article
  5. 5

    Generalized transmission-line model for estimation of cellular handset power absorption in biological tissues by Razansky, D., Soldea, D.F., Einziger, P.D.

    “…Evaluation of cellular handset power absorption in biological tissues has recently received due public attention. Generally, the solution of even simple…”
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    Journal Article
  6. 6

    Rigorous image-series expansions of quasi-static Green's functions for regions with planar stratification by Einziger, P.D., Livshitz, L.M., Mizrahi, J.

    “…A novel image-series expansion scheme for quasi-static Green's function in n+1 layered media is obtained by expanding the frequency-dependent Hertz potential…”
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    Journal Article
  7. 7

    Rigorous Green's function formulation for transmembrane potential induced along a 3-D infinite cylindrical cell by Livshitz, L.M., Einziger, P.D., Mizrahi, J.

    “…The quasi-static electromagnetic field interaction with three-dimensional infinite-cylindrical cell is investigated for both intracellular (IPS) and…”
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    Journal Article
  8. 8

    Interaction of array of finite electrodes with layered biological tissue: effect of electrode size and configuration by Livshitz, L.M., Mizrahi, J., Einziger, P.D.

    “…A hybrid scheme, combining image series and moment method has been utilized for the calculation of the intramuscular three-dimensional (3-D) current density…”
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    Journal Article
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  10. 10

    Rigorous Characterization of Resonant Hot Spot Conditions in a Stratified Tissue Model by Razansky, D., Einziger, P.D., Adam, D.R.

    “…A unified approach for determining the lossy resonance (hot-spot) conditions in a lossy stratified biological tissue model is proposed. These conditions may…”
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    Journal Article
  11. 11

    Rigorous image-series expansions of quasi-static green's functions for regionswith planar stratification by Einziger, P.D., Livshitz, L.M., Mizrahi, J.

    “…A novel image-series expansion scheme for quasi-static Greens function in n + 1 layered media is obtained by expanding the frequency-dependent Hertz potential…”
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    Journal Article
  12. 12

    WKB quasistatic reconstruction of layered biological tissues by Dolgin, M., Einziger, P.D.

    “…A novel electrical impedance tomography method is introduced for reconstruction of layered biological tissues. The method utilizes a recently proposed image…”
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    Conference Proceeding
  13. 13

    On the generation of broad-band beams for a nondispersive time-signal transmission by Dvir, I., Einziger, P.D.

    “…A novel aperture synthesis method is proposed for a broad-band beam (BB) generation, which supports a nondispersive time-signal transmission to a single…”
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    Journal Article
  14. 14

    On discretization of the depth dimension in electrical impedance tomography problems by Dolgin, M., Einziger, P.D.

    “…Image reconstruction in electrical impedance tomography is, generally, an ill-posed nonlinear inverse problem. Regularization methods are widely used to ensure…”
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    Conference Proceeding
  15. 15

    Optical emission from organic light-emitting diodes by Epstein, A., Tessler, N., Einziger, P.D.

    “…The results presented herein are associated with an analytical model for the electromagnetic radiation emitted from a nanometric organic light-emitting diode…”
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    Conference Proceeding
  16. 16

    Electrical Impedance Tomography Method for Reconstruction of Biological Tissues with Continuous Plane-Stratification by Dolgin, M., Einziger, P.D.

    “…A novel electrical impedance tomography method is introduced for reconstruction of layered biological tissues with continuous plane-stratification. The…”
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    Conference Proceeding Journal Article
  17. 17

    Increased acoustic and electromagnetic energy deposition in a layered tissue model by Razansky, D., Einziger, P.D., Adam, D.R.

    “…By analyzing and optimizing acoustic and electromagnetic waves absorption in a simplified layered model of hyperthermic configuration, it is shown that the…”
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    Conference Proceeding
  18. 18

    Cavity-Enhanced Biosensing Utilizing Plasmon Resonance Modes by Razansky, D., Einziger, P.D., Adam, D.K.

    “…Traditionally, surface plasmon resonance (SPR) biosensors utilize absorption of light radiation incident upon noble metal films above the total internal…”
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    Conference Proceeding Journal Article
  19. 19

    Optimization of Bulk and Surface Biosensing in Plane Stratified Configurations by Razansky, D., Einziger, P.D., Adam, D.R.

    “…Various biochemical and tissue sensors utilize layered configurations to accurately measure the physical parameters (e.g. refractive index) of the suspension…”
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    Conference Proceeding Journal Article
  20. 20

    Transmission-Line Model for Myelinated Nerve Fiber by Einziger, P.D., Livshitz, L.M., Mizrahi, J.

    “…Herein, the well-known cable equation for non-myelinated axon model is extended analytically for myelinated axon formulation. The classical cable equation is…”
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    Conference Proceeding Journal Article