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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >A novel glass-fiber-aided cold-press method for fabrication of n-type Ag2Te nanowires thermoelectric film on flexible copy-paper substrate
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A novel glass-fiber-aided cold-press method for fabrication of n-type Ag2Te nanowires thermoelectric film on flexible copy-paper substrate

机译:一种新型玻璃纤维辅助冷压法,用于在柔性复印纸基材上制造n型Ag2Te纳米线热电薄膜

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摘要

Being light, cheap, breathable and foldable, paper is emerging as a new type of substrate for flexible thermoelectric films. Several techniques including soaking and magnetron sputtering have been developed to coat inorganic semiconductors onto paper substrate, but the flexibility and thermoelectric performance of the resulting films are still far from satisfactory. This work implements a novel glass-fiber-aided cold-press method for achieving flexible n-type Ag2Te nanowire (NW) films on copy-paper substrate. A greatly enhanced electrical conductivity has been realized in Ag2Te NWs film due to the disappearance of grain boundaries under compression to 30 MPa. As a consequence, the largest power factor (PF) value of up to 192 mu W (mK(2))(-1) at 195 degrees C surpasses the performance of paper based thermoelectric films reported previously. Moreover, the PF value only decreases by 20% after 500 bending cycles, suggesting the good flexibility of the copy-paper supported Ag2Te NWs films. A thermoelectric module containing 10 pieces of series-connected Ag2Te films is fabricated using this glass-fiber-aided cold-press method. With Delta T increasing from 20 K to 80 K, the open-circuit voltage of module continually increases from about 11 mV to 60 mV. This measurement of open-circuit voltage has been repeated 10 times to confirm the stability of paper-supported Ag2Te thermoelectric module. The glass-fiber-aided cold-press method in this study provides an effective access to high-performance, flexible and solvent-processable inorganic thermoelectric films on copy-paper substrate.
机译:灯光,廉价,透气和可折叠,纸张作为柔性热电薄膜的一种新型基板。已经开发了几种包括浸泡和磁控溅射的技术,以将无机半导体涂覆到纸基材上,但是所得薄膜的柔韧性和热电性能仍然远离令人满意。该工作实现了一种用于在拷贝纸基材上实现柔性N型Ag2Te纳米线(NW)薄膜的新型玻璃纤维辅助冷压法。由于压缩下的晶界的消失为30MPa,在Ag2te NWS膜中实现了极大的导电性。因此,195摄氏度高达192μW(MK(2))( - 1)的最大功率因数(PF)值超过了先前报道的纸基热电薄膜的性能。此外,PF值仅在500次弯曲循环后降低20%,表明复印纸支持的AG2TE NWS薄膜的良好灵活性。使用该玻璃纤维辅助冷压法制造含有10件系列连接的AG2TE膜的热电模块。 ΔT从20 k增加到80 k,模块的开路电压不断增加约11mV至60 mV。该开口电压的测量已经重复10次以确认纸张支持的AG2TE热电模块的稳定性。本研究中的玻璃纤维辅助冷压方法提供了对复印纸基材上的高性能,柔性和可溶剂可加工的无机热电薄膜提供了有效的进入。

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    Guilin Univ Elect Technol Sch Mat Sci &

    Engn Guangxi Collaborat Innovat Ctr Struct &

    Property Guangxi Key Lab Informat Mat Guilin 541004 Peoples R China;

    Guilin Univ Elect Technol Sch Mat Sci &

    Engn Guangxi Collaborat Innovat Ctr Struct &

    Property Guangxi Key Lab Informat Mat Guilin 541004 Peoples R China;

    Guilin Univ Elect Technol Sch Mat Sci &

    Engn Guangxi Collaborat Innovat Ctr Struct &

    Property Guangxi Key Lab Informat Mat Guilin 541004 Peoples R China;

    Guilin Univ Elect Technol Sch Mat Sci &

    Engn Guangxi Collaborat Innovat Ctr Struct &

    Property Guangxi Key Lab Informat Mat Guilin 541004 Peoples R China;

    Guilin Univ Elect Technol Sch Mat Sci &

    Engn Guangxi Collaborat Innovat Ctr Struct &

    Property Guangxi Key Lab Informat Mat Guilin 541004 Peoples R China;

    Guilin Univ Elect Technol Sch Mat Sci &

    Engn Guangxi Collaborat Innovat Ctr Struct &

    Property Guangxi Key Lab Informat Mat Guilin 541004 Peoples R China;

    Guilin Univ Elect Technol Sch Mat Sci &

    Engn Guangxi Collaborat Innovat Ctr Struct &

    Property Guangxi Key Lab Informat Mat Guilin 541004 Peoples R China;

    East China Univ Sci &

    Technol Sch Chem &

    Mol Engn Key Lab Adv Mat 130 Meilong Rd Shanghai 200237 Peoples R China;

    Nagoya Inst Technol Dept Life Sci &

    Appl Chem Showa Ku Gokiso Cho Nagoya Aichi 4668555 Japan;

    Nagoya Inst Technol Dept Life Sci &

    Appl Chem Showa Ku Gokiso Cho Nagoya Aichi 4668555 Japan;

    Toyota Phys &

    Chem Res Inst 41-1 Yokomichi Nagakute Aichi 4801192 Japan;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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