Normal Hydrogen Electrode

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Gianluigi A. Botton - One of the best experts on this subject based on the ideXlab platform.

  • high efficiency solar to Hydrogen conversion on a monolithically integrated ingan gan si adaptive tunnel junction photocathode
    Nano Letters, 2015
    Co-Authors: Shizhao Fan, Steffi Y. Woo, Bandar Alotaibi, Yongjie Wang, Gianluigi A. Botton
    Abstract:

    H2 generation under sunlight offers great potential for a sustainable fuel production system. To achieve high efficiency solar-to-Hydrogen conversion, multijunction photoElectrodes have been commonly employed to absorb a large portion of the solar spectrum and to provide energetic charge carriers for water splitting. However, the design and performance of such tandem devices has been fundamentally limited by the current matching between various absorbing layers. Here, by exploiting the lateral carrier extraction scheme of one-dimensional nanowire structures, we have demonstrated that a dual absorber photocathode, consisting of p-InGaN/tunnel junction/n-GaN nanowire arrays and a Si solar cell wafer, can operate efficiently without the strict current matching requirement. The monolithically integrated photocathode exhibits an applied bias photon-to-current efficiency of 8.7% at a potential of 0.33 V versus Normal Hydrogen Electrode and nearly unity Faradaic efficiency for H2 generation. Such an adaptive mul...

  • High Efficiency Solar-to-Hydrogen Conversion on a Monolithically Integrated InGaN/GaN/Si Adaptive Tunnel Junction Photocathode
    Nano Letters, 2015
    Co-Authors: Shizhao Fan, Steffi Y. Woo, Bandar Alotaibi, Gianluigi A. Botton, Yongjie Wang, Zetian Mi
    Abstract:

    H2 generation under sunlight offers great potential for a sustainable fuel production system. To achieve high efficiency solar-to-Hydrogen conversion, multijunction photoElectrodes have been commonly employed to absorb a large portion of the solar spectrum and to provide energetic charge carriers for water splitting. However, the design and performance of such tandem devices has been fundamentally limited by the current matching between various absorbing layers. Here, by exploiting the lateral carrier extraction scheme of one-dimensional nanowire structures, we have demonstrated that a dual absorber photocathode, consisting of p-InGaN/tunnel junction/n-GaN nanowire arrays and a Si solar cell wafer, can operate efficiently without the strict current matching requirement. The monolithically integrated photocathode exhibits an applied bias photon-to-current efficiency of 8.7% at a potential of 0.33 V versus Normal Hydrogen Electrode and nearly unity Faradaic efficiency for H2 generation. Such an adaptive multijunction architecture can surpass the design and performance restrictions of conventional tandem photoElectrodes.

Shizhao Fan - One of the best experts on this subject based on the ideXlab platform.

  • high efficiency solar to Hydrogen conversion on a monolithically integrated ingan gan si adaptive tunnel junction photocathode
    Nano Letters, 2015
    Co-Authors: Shizhao Fan, Steffi Y. Woo, Bandar Alotaibi, Yongjie Wang, Gianluigi A. Botton
    Abstract:

    H2 generation under sunlight offers great potential for a sustainable fuel production system. To achieve high efficiency solar-to-Hydrogen conversion, multijunction photoElectrodes have been commonly employed to absorb a large portion of the solar spectrum and to provide energetic charge carriers for water splitting. However, the design and performance of such tandem devices has been fundamentally limited by the current matching between various absorbing layers. Here, by exploiting the lateral carrier extraction scheme of one-dimensional nanowire structures, we have demonstrated that a dual absorber photocathode, consisting of p-InGaN/tunnel junction/n-GaN nanowire arrays and a Si solar cell wafer, can operate efficiently without the strict current matching requirement. The monolithically integrated photocathode exhibits an applied bias photon-to-current efficiency of 8.7% at a potential of 0.33 V versus Normal Hydrogen Electrode and nearly unity Faradaic efficiency for H2 generation. Such an adaptive mul...

  • High Efficiency Solar-to-Hydrogen Conversion on a Monolithically Integrated InGaN/GaN/Si Adaptive Tunnel Junction Photocathode
    Nano Letters, 2015
    Co-Authors: Shizhao Fan, Steffi Y. Woo, Bandar Alotaibi, Gianluigi A. Botton, Yongjie Wang, Zetian Mi
    Abstract:

    H2 generation under sunlight offers great potential for a sustainable fuel production system. To achieve high efficiency solar-to-Hydrogen conversion, multijunction photoElectrodes have been commonly employed to absorb a large portion of the solar spectrum and to provide energetic charge carriers for water splitting. However, the design and performance of such tandem devices has been fundamentally limited by the current matching between various absorbing layers. Here, by exploiting the lateral carrier extraction scheme of one-dimensional nanowire structures, we have demonstrated that a dual absorber photocathode, consisting of p-InGaN/tunnel junction/n-GaN nanowire arrays and a Si solar cell wafer, can operate efficiently without the strict current matching requirement. The monolithically integrated photocathode exhibits an applied bias photon-to-current efficiency of 8.7% at a potential of 0.33 V versus Normal Hydrogen Electrode and nearly unity Faradaic efficiency for H2 generation. Such an adaptive multijunction architecture can surpass the design and performance restrictions of conventional tandem photoElectrodes.

Zetian Mi - One of the best experts on this subject based on the ideXlab platform.

  • High Efficiency Solar-to-Hydrogen Conversion on a Monolithically Integrated InGaN/GaN/Si Adaptive Tunnel Junction Photocathode
    Nano Letters, 2015
    Co-Authors: Shizhao Fan, Steffi Y. Woo, Bandar Alotaibi, Gianluigi A. Botton, Yongjie Wang, Zetian Mi
    Abstract:

    H2 generation under sunlight offers great potential for a sustainable fuel production system. To achieve high efficiency solar-to-Hydrogen conversion, multijunction photoElectrodes have been commonly employed to absorb a large portion of the solar spectrum and to provide energetic charge carriers for water splitting. However, the design and performance of such tandem devices has been fundamentally limited by the current matching between various absorbing layers. Here, by exploiting the lateral carrier extraction scheme of one-dimensional nanowire structures, we have demonstrated that a dual absorber photocathode, consisting of p-InGaN/tunnel junction/n-GaN nanowire arrays and a Si solar cell wafer, can operate efficiently without the strict current matching requirement. The monolithically integrated photocathode exhibits an applied bias photon-to-current efficiency of 8.7% at a potential of 0.33 V versus Normal Hydrogen Electrode and nearly unity Faradaic efficiency for H2 generation. Such an adaptive multijunction architecture can surpass the design and performance restrictions of conventional tandem photoElectrodes.

Steffi Y. Woo - One of the best experts on this subject based on the ideXlab platform.

  • high efficiency solar to Hydrogen conversion on a monolithically integrated ingan gan si adaptive tunnel junction photocathode
    Nano Letters, 2015
    Co-Authors: Shizhao Fan, Steffi Y. Woo, Bandar Alotaibi, Yongjie Wang, Gianluigi A. Botton
    Abstract:

    H2 generation under sunlight offers great potential for a sustainable fuel production system. To achieve high efficiency solar-to-Hydrogen conversion, multijunction photoElectrodes have been commonly employed to absorb a large portion of the solar spectrum and to provide energetic charge carriers for water splitting. However, the design and performance of such tandem devices has been fundamentally limited by the current matching between various absorbing layers. Here, by exploiting the lateral carrier extraction scheme of one-dimensional nanowire structures, we have demonstrated that a dual absorber photocathode, consisting of p-InGaN/tunnel junction/n-GaN nanowire arrays and a Si solar cell wafer, can operate efficiently without the strict current matching requirement. The monolithically integrated photocathode exhibits an applied bias photon-to-current efficiency of 8.7% at a potential of 0.33 V versus Normal Hydrogen Electrode and nearly unity Faradaic efficiency for H2 generation. Such an adaptive mul...

  • High Efficiency Solar-to-Hydrogen Conversion on a Monolithically Integrated InGaN/GaN/Si Adaptive Tunnel Junction Photocathode
    Nano Letters, 2015
    Co-Authors: Shizhao Fan, Steffi Y. Woo, Bandar Alotaibi, Gianluigi A. Botton, Yongjie Wang, Zetian Mi
    Abstract:

    H2 generation under sunlight offers great potential for a sustainable fuel production system. To achieve high efficiency solar-to-Hydrogen conversion, multijunction photoElectrodes have been commonly employed to absorb a large portion of the solar spectrum and to provide energetic charge carriers for water splitting. However, the design and performance of such tandem devices has been fundamentally limited by the current matching between various absorbing layers. Here, by exploiting the lateral carrier extraction scheme of one-dimensional nanowire structures, we have demonstrated that a dual absorber photocathode, consisting of p-InGaN/tunnel junction/n-GaN nanowire arrays and a Si solar cell wafer, can operate efficiently without the strict current matching requirement. The monolithically integrated photocathode exhibits an applied bias photon-to-current efficiency of 8.7% at a potential of 0.33 V versus Normal Hydrogen Electrode and nearly unity Faradaic efficiency for H2 generation. Such an adaptive multijunction architecture can surpass the design and performance restrictions of conventional tandem photoElectrodes.

Bandar Alotaibi - One of the best experts on this subject based on the ideXlab platform.

  • high efficiency solar to Hydrogen conversion on a monolithically integrated ingan gan si adaptive tunnel junction photocathode
    Nano Letters, 2015
    Co-Authors: Shizhao Fan, Steffi Y. Woo, Bandar Alotaibi, Yongjie Wang, Gianluigi A. Botton
    Abstract:

    H2 generation under sunlight offers great potential for a sustainable fuel production system. To achieve high efficiency solar-to-Hydrogen conversion, multijunction photoElectrodes have been commonly employed to absorb a large portion of the solar spectrum and to provide energetic charge carriers for water splitting. However, the design and performance of such tandem devices has been fundamentally limited by the current matching between various absorbing layers. Here, by exploiting the lateral carrier extraction scheme of one-dimensional nanowire structures, we have demonstrated that a dual absorber photocathode, consisting of p-InGaN/tunnel junction/n-GaN nanowire arrays and a Si solar cell wafer, can operate efficiently without the strict current matching requirement. The monolithically integrated photocathode exhibits an applied bias photon-to-current efficiency of 8.7% at a potential of 0.33 V versus Normal Hydrogen Electrode and nearly unity Faradaic efficiency for H2 generation. Such an adaptive mul...

  • High Efficiency Solar-to-Hydrogen Conversion on a Monolithically Integrated InGaN/GaN/Si Adaptive Tunnel Junction Photocathode
    Nano Letters, 2015
    Co-Authors: Shizhao Fan, Steffi Y. Woo, Bandar Alotaibi, Gianluigi A. Botton, Yongjie Wang, Zetian Mi
    Abstract:

    H2 generation under sunlight offers great potential for a sustainable fuel production system. To achieve high efficiency solar-to-Hydrogen conversion, multijunction photoElectrodes have been commonly employed to absorb a large portion of the solar spectrum and to provide energetic charge carriers for water splitting. However, the design and performance of such tandem devices has been fundamentally limited by the current matching between various absorbing layers. Here, by exploiting the lateral carrier extraction scheme of one-dimensional nanowire structures, we have demonstrated that a dual absorber photocathode, consisting of p-InGaN/tunnel junction/n-GaN nanowire arrays and a Si solar cell wafer, can operate efficiently without the strict current matching requirement. The monolithically integrated photocathode exhibits an applied bias photon-to-current efficiency of 8.7% at a potential of 0.33 V versus Normal Hydrogen Electrode and nearly unity Faradaic efficiency for H2 generation. Such an adaptive multijunction architecture can surpass the design and performance restrictions of conventional tandem photoElectrodes.