The Experts below are selected from a list of 99 Experts worldwide ranked by ideXlab platform

Jie Xu - One of the best experts on this subject based on the ideXlab platform.

  • a high performance all solid state Yarn supercapacitor based on polypyrrole Coated stainless steel cotton blended Yarns
    Cellulose, 2019
    Co-Authors: Chuanjie Zhang, Zeqi Chen, Weilin Xu, Jie Xu
    Abstract:

    Yarn supercapacitors (YSCs) are attracting considerable interest for wearable electronics and intelligent textiles due to their high flexibility and weavability. In the present study, stainless steel/cotton blended Yarns were used as supports and current collectors to produce polypyrrole-Coated Yarn electrodes. The as-made YSC exhibited a high areal specific capacitance of 344 mF cm−2 at a current density of 0.6 mA cm−2 and good cycling stability (almost 93% capacitance retention over 1000 cycles). Moreover, the YSC could be knitted into other fabrics without damaging its original structure and electrochemical performance owing to its superior flexibility, indicating that it can meet the requirements of energy-storage devices for wearable electronics.

  • A high-performance all-solid-state Yarn supercapacitor based on polypyrrole-Coated stainless steel/cotton blended Yarns
    Cellulose, 2018
    Co-Authors: Chuanjie Zhang, Zeqi Chen, Weilin Xu, Jie Xu
    Abstract:

    Yarn supercapacitors (YSCs) are attracting considerable interest for wearable electronics and intelligent textiles due to their high flexibility and weavability. In the present study, stainless steel/cotton blended Yarns were used as supports and current collectors to produce polypyrrole-Coated Yarn electrodes. The as-made YSC exhibited a high areal specific capacitance of 344 mF cm−2 at a current density of 0.6 mA cm−2 and good cycling stability (almost 93% capacitance retention over 1000 cycles). Moreover, the YSC could be knitted into other fabrics without damaging its original structure and electrochemical performance owing to its superior flexibility, indicating that it can meet the requirements of energy-storage devices for wearable electronics.

Chuanjie Zhang - One of the best experts on this subject based on the ideXlab platform.

  • a high performance all solid state Yarn supercapacitor based on polypyrrole Coated stainless steel cotton blended Yarns
    Cellulose, 2019
    Co-Authors: Chuanjie Zhang, Zeqi Chen, Weilin Xu, Jie Xu
    Abstract:

    Yarn supercapacitors (YSCs) are attracting considerable interest for wearable electronics and intelligent textiles due to their high flexibility and weavability. In the present study, stainless steel/cotton blended Yarns were used as supports and current collectors to produce polypyrrole-Coated Yarn electrodes. The as-made YSC exhibited a high areal specific capacitance of 344 mF cm−2 at a current density of 0.6 mA cm−2 and good cycling stability (almost 93% capacitance retention over 1000 cycles). Moreover, the YSC could be knitted into other fabrics without damaging its original structure and electrochemical performance owing to its superior flexibility, indicating that it can meet the requirements of energy-storage devices for wearable electronics.

  • A high-performance all-solid-state Yarn supercapacitor based on polypyrrole-Coated stainless steel/cotton blended Yarns
    Cellulose, 2018
    Co-Authors: Chuanjie Zhang, Zeqi Chen, Weilin Xu, Jie Xu
    Abstract:

    Yarn supercapacitors (YSCs) are attracting considerable interest for wearable electronics and intelligent textiles due to their high flexibility and weavability. In the present study, stainless steel/cotton blended Yarns were used as supports and current collectors to produce polypyrrole-Coated Yarn electrodes. The as-made YSC exhibited a high areal specific capacitance of 344 mF cm−2 at a current density of 0.6 mA cm−2 and good cycling stability (almost 93% capacitance retention over 1000 cycles). Moreover, the YSC could be knitted into other fabrics without damaging its original structure and electrochemical performance owing to its superior flexibility, indicating that it can meet the requirements of energy-storage devices for wearable electronics.

Dirk Hegemann - One of the best experts on this subject based on the ideXlab platform.

  • Controlling the release from silver electrodes by titanium adlayers for health monitoring.
    Nanomedicine: Nanotechnology Biology and Medicine, 2015
    Co-Authors: Michel Amberg, Markus Weder, Patrick Rupper, Raphael Storchenegger, Dirk Hegemann
    Abstract:

    Beside cancer, cardiovascular disease is the leading cause of deaths worldwide. For medical diagnosis electrocardiography (ECG) is only a powerful predicting tool if the sensed cardiac cycle involves a high signal to noise ratio and reduced artefacts over a long term. The interface of the electrodes to the biological system is therefore improved with a novel textile system. The textile fiber therein is a 100 nm silver-Coated Yarn to improve the signal quality and the reliability of the ECG signals. Long term diagnosis involves a silver release to the applied tissue surface. It is known, that a high silver release can cause a cytotoxic effect on human cells. To prevent cytotoxicity but still enabling good electrical conductivity accompanied by positive antibacterial properties of silver we developed a nanoscaled TiOx adlayer. The biological and electrical properties of these novel electrode systems are investigated and described in the manuscript.

  • Controlling the release from silver electrodes by titanium adlayers for health monitoring
    Nanomedicine: Nanotechnology Biology and Medicine, 2015
    Co-Authors: Michel Amberg, Markus Weder, Patrick Rupper, Raphael Storchenegger, Dirk Hegemann
    Abstract:

    Beside cancer, cardiovascular disease is the leading cause of deaths worldwide. For medical diagnosis electrocardiography (ECG) is only a powerful predicting tool if the sensed cardiac cycle involves a high signal to noise ratio and reduced artefacts over a long term. The interface of the electrodes to the biological system is therefore improved with a novel textile system. The textile fiber therein is a 100nm silver-Coated Yarn to improve the signal quality and the reliability of the ECG signals. Long term diagnosis involves a silver release to the applied tissue surface. It is known, that a high silver release can cause a cytotoxic effect on human cells. To prevent cytotoxicity but still enabling good electrical conductivity accompanied by positive antibacterial properties of silver we developed a nanoscaled TiOx adlayer. The biological and electrical properties of these novel electrode systems are investigated and described in the manuscript. From the Clinical Editor: The detection of cardiovascular disease using electrocardiography (ECG) usually involves the attachment of electrodes on the skin. In this paper, the authors here described a novel textile system using silver-Coated Yarn, to provide the interface of the electrodes to the biological system. To prevent sustained high silver release that may lead to cytotoxicity, a nanoscaled TiOx adlayer was developed and added to the novel textile electrode.

Zeqi Chen - One of the best experts on this subject based on the ideXlab platform.

  • a high performance all solid state Yarn supercapacitor based on polypyrrole Coated stainless steel cotton blended Yarns
    Cellulose, 2019
    Co-Authors: Chuanjie Zhang, Zeqi Chen, Weilin Xu, Jie Xu
    Abstract:

    Yarn supercapacitors (YSCs) are attracting considerable interest for wearable electronics and intelligent textiles due to their high flexibility and weavability. In the present study, stainless steel/cotton blended Yarns were used as supports and current collectors to produce polypyrrole-Coated Yarn electrodes. The as-made YSC exhibited a high areal specific capacitance of 344 mF cm−2 at a current density of 0.6 mA cm−2 and good cycling stability (almost 93% capacitance retention over 1000 cycles). Moreover, the YSC could be knitted into other fabrics without damaging its original structure and electrochemical performance owing to its superior flexibility, indicating that it can meet the requirements of energy-storage devices for wearable electronics.

  • A high-performance all-solid-state Yarn supercapacitor based on polypyrrole-Coated stainless steel/cotton blended Yarns
    Cellulose, 2018
    Co-Authors: Chuanjie Zhang, Zeqi Chen, Weilin Xu, Jie Xu
    Abstract:

    Yarn supercapacitors (YSCs) are attracting considerable interest for wearable electronics and intelligent textiles due to their high flexibility and weavability. In the present study, stainless steel/cotton blended Yarns were used as supports and current collectors to produce polypyrrole-Coated Yarn electrodes. The as-made YSC exhibited a high areal specific capacitance of 344 mF cm−2 at a current density of 0.6 mA cm−2 and good cycling stability (almost 93% capacitance retention over 1000 cycles). Moreover, the YSC could be knitted into other fabrics without damaging its original structure and electrochemical performance owing to its superior flexibility, indicating that it can meet the requirements of energy-storage devices for wearable electronics.

Weilin Xu - One of the best experts on this subject based on the ideXlab platform.

  • a high performance all solid state Yarn supercapacitor based on polypyrrole Coated stainless steel cotton blended Yarns
    Cellulose, 2019
    Co-Authors: Chuanjie Zhang, Zeqi Chen, Weilin Xu, Jie Xu
    Abstract:

    Yarn supercapacitors (YSCs) are attracting considerable interest for wearable electronics and intelligent textiles due to their high flexibility and weavability. In the present study, stainless steel/cotton blended Yarns were used as supports and current collectors to produce polypyrrole-Coated Yarn electrodes. The as-made YSC exhibited a high areal specific capacitance of 344 mF cm−2 at a current density of 0.6 mA cm−2 and good cycling stability (almost 93% capacitance retention over 1000 cycles). Moreover, the YSC could be knitted into other fabrics without damaging its original structure and electrochemical performance owing to its superior flexibility, indicating that it can meet the requirements of energy-storage devices for wearable electronics.

  • A high-performance all-solid-state Yarn supercapacitor based on polypyrrole-Coated stainless steel/cotton blended Yarns
    Cellulose, 2018
    Co-Authors: Chuanjie Zhang, Zeqi Chen, Weilin Xu, Jie Xu
    Abstract:

    Yarn supercapacitors (YSCs) are attracting considerable interest for wearable electronics and intelligent textiles due to their high flexibility and weavability. In the present study, stainless steel/cotton blended Yarns were used as supports and current collectors to produce polypyrrole-Coated Yarn electrodes. The as-made YSC exhibited a high areal specific capacitance of 344 mF cm−2 at a current density of 0.6 mA cm−2 and good cycling stability (almost 93% capacitance retention over 1000 cycles). Moreover, the YSC could be knitted into other fabrics without damaging its original structure and electrochemical performance owing to its superior flexibility, indicating that it can meet the requirements of energy-storage devices for wearable electronics.