The Experts below are selected from a list of 285 Experts worldwide ranked by ideXlab platform

El M Tahchi - One of the best experts on this subject based on the ideXlab platform.

  • enhancing the magnetoelectric response of metglas polyvinylidene fluoride laminates by exploiting the flux Concentration Effect
    Applied Physics Letters, 2009
    Co-Authors: Zhao Fang, S G Lu, F Li, Suman Datta, Q M Zhang, El M Tahchi
    Abstract:

    Magnetic flux Concentration Effect of Metglas as a function of its sheet aspect ratio was investigated for Metglas/polyvinylidene fluoride laminates. Taking advantage of this Effect, the magnetoelectric voltage coefficient of 21.46 V/cm∙Oe for a laminate with 1 mm wide and 30 mm long Metglas sheet (25 μm thick) is achieved, which is much higher than those reported earlier in similar laminates without making use of the flux Concentration Effect. The results demonstrate an Effective means to significantly enhance the sensitivity of magnetostrictive/piezoelectric composite laminates as weak magnetic field sensors.

Zhao Fang - One of the best experts on this subject based on the ideXlab platform.

  • enhancing the magnetoelectric response of metglas polyvinylidene fluoride laminates by exploiting the flux Concentration Effect
    Applied Physics Letters, 2009
    Co-Authors: Zhao Fang, S G Lu, F Li, Suman Datta, Q M Zhang, El M Tahchi
    Abstract:

    Magnetic flux Concentration Effect of Metglas as a function of its sheet aspect ratio was investigated for Metglas/polyvinylidene fluoride laminates. Taking advantage of this Effect, the magnetoelectric voltage coefficient of 21.46 V/cm∙Oe for a laminate with 1 mm wide and 30 mm long Metglas sheet (25 μm thick) is achieved, which is much higher than those reported earlier in similar laminates without making use of the flux Concentration Effect. The results demonstrate an Effective means to significantly enhance the sensitivity of magnetostrictive/piezoelectric composite laminates as weak magnetic field sensors.

  • Enhancing the magnetoelectric response of Metglas/polyvinylidene fluoride laminates by exploiting the flux Concentration Effect
    Applied Physics Letters, 2009
    Co-Authors: Zhao Fang, S G Lu, F Li, Suman Datta, Qiming Zhang, M. El Tahchi
    Abstract:

    Magnetic flux Concentration Effect of Metglas as a function of its sheet aspect ratio was investigated for Metglas/polyvinylidene fluoride laminates. Taking advantage of this Effect, the magnetoelectric voltage coefficient of 21.46 V/cm∙Oe for a laminate with 1 mm wide and 30 mm long Metglas sheet (25 μm thick) is achieved, which is much higher than those reported earlier in similar laminates without making use of the flux Concentration Effect. The results demonstrate an Effective means to significantly enhance the sensitivity of magnetostrictive/piezoelectric composite laminates as weak magnetic field sensors.

S G Lu - One of the best experts on this subject based on the ideXlab platform.

  • enhancing the magnetoelectric response of metglas polyvinylidene fluoride laminates by exploiting the flux Concentration Effect
    Applied Physics Letters, 2009
    Co-Authors: Zhao Fang, S G Lu, F Li, Suman Datta, Q M Zhang, El M Tahchi
    Abstract:

    Magnetic flux Concentration Effect of Metglas as a function of its sheet aspect ratio was investigated for Metglas/polyvinylidene fluoride laminates. Taking advantage of this Effect, the magnetoelectric voltage coefficient of 21.46 V/cm∙Oe for a laminate with 1 mm wide and 30 mm long Metglas sheet (25 μm thick) is achieved, which is much higher than those reported earlier in similar laminates without making use of the flux Concentration Effect. The results demonstrate an Effective means to significantly enhance the sensitivity of magnetostrictive/piezoelectric composite laminates as weak magnetic field sensors.

  • Enhancing the magnetoelectric response of Metglas/polyvinylidene fluoride laminates by exploiting the flux Concentration Effect
    Applied Physics Letters, 2009
    Co-Authors: Zhao Fang, S G Lu, F Li, Suman Datta, Qiming Zhang, M. El Tahchi
    Abstract:

    Magnetic flux Concentration Effect of Metglas as a function of its sheet aspect ratio was investigated for Metglas/polyvinylidene fluoride laminates. Taking advantage of this Effect, the magnetoelectric voltage coefficient of 21.46 V/cm∙Oe for a laminate with 1 mm wide and 30 mm long Metglas sheet (25 μm thick) is achieved, which is much higher than those reported earlier in similar laminates without making use of the flux Concentration Effect. The results demonstrate an Effective means to significantly enhance the sensitivity of magnetostrictive/piezoelectric composite laminates as weak magnetic field sensors.

F Li - One of the best experts on this subject based on the ideXlab platform.

  • enhancing the magnetoelectric response of metglas polyvinylidene fluoride laminates by exploiting the flux Concentration Effect
    Applied Physics Letters, 2009
    Co-Authors: Zhao Fang, S G Lu, F Li, Suman Datta, Q M Zhang, El M Tahchi
    Abstract:

    Magnetic flux Concentration Effect of Metglas as a function of its sheet aspect ratio was investigated for Metglas/polyvinylidene fluoride laminates. Taking advantage of this Effect, the magnetoelectric voltage coefficient of 21.46 V/cm∙Oe for a laminate with 1 mm wide and 30 mm long Metglas sheet (25 μm thick) is achieved, which is much higher than those reported earlier in similar laminates without making use of the flux Concentration Effect. The results demonstrate an Effective means to significantly enhance the sensitivity of magnetostrictive/piezoelectric composite laminates as weak magnetic field sensors.

  • Enhancing the magnetoelectric response of Metglas/polyvinylidene fluoride laminates by exploiting the flux Concentration Effect
    Applied Physics Letters, 2009
    Co-Authors: Zhao Fang, S G Lu, F Li, Suman Datta, Qiming Zhang, M. El Tahchi
    Abstract:

    Magnetic flux Concentration Effect of Metglas as a function of its sheet aspect ratio was investigated for Metglas/polyvinylidene fluoride laminates. Taking advantage of this Effect, the magnetoelectric voltage coefficient of 21.46 V/cm∙Oe for a laminate with 1 mm wide and 30 mm long Metglas sheet (25 μm thick) is achieved, which is much higher than those reported earlier in similar laminates without making use of the flux Concentration Effect. The results demonstrate an Effective means to significantly enhance the sensitivity of magnetostrictive/piezoelectric composite laminates as weak magnetic field sensors.

Suman Datta - One of the best experts on this subject based on the ideXlab platform.

  • enhancing the magnetoelectric response of metglas polyvinylidene fluoride laminates by exploiting the flux Concentration Effect
    Applied Physics Letters, 2009
    Co-Authors: Zhao Fang, S G Lu, F Li, Suman Datta, Q M Zhang, El M Tahchi
    Abstract:

    Magnetic flux Concentration Effect of Metglas as a function of its sheet aspect ratio was investigated for Metglas/polyvinylidene fluoride laminates. Taking advantage of this Effect, the magnetoelectric voltage coefficient of 21.46 V/cm∙Oe for a laminate with 1 mm wide and 30 mm long Metglas sheet (25 μm thick) is achieved, which is much higher than those reported earlier in similar laminates without making use of the flux Concentration Effect. The results demonstrate an Effective means to significantly enhance the sensitivity of magnetostrictive/piezoelectric composite laminates as weak magnetic field sensors.

  • Enhancing the magnetoelectric response of Metglas/polyvinylidene fluoride laminates by exploiting the flux Concentration Effect
    Applied Physics Letters, 2009
    Co-Authors: Zhao Fang, S G Lu, F Li, Suman Datta, Qiming Zhang, M. El Tahchi
    Abstract:

    Magnetic flux Concentration Effect of Metglas as a function of its sheet aspect ratio was investigated for Metglas/polyvinylidene fluoride laminates. Taking advantage of this Effect, the magnetoelectric voltage coefficient of 21.46 V/cm∙Oe for a laminate with 1 mm wide and 30 mm long Metglas sheet (25 μm thick) is achieved, which is much higher than those reported earlier in similar laminates without making use of the flux Concentration Effect. The results demonstrate an Effective means to significantly enhance the sensitivity of magnetostrictive/piezoelectric composite laminates as weak magnetic field sensors.