Laser & Optoelectronics Progress, Volume. 60, Issue 13, 1316010(2023)

Progress in Stretchable Fiber-Based Thermoelectric Materials and Devices

Zhe Wang1, Wangkai Jiang1, Kaichen Xu2、**, and Xiaoqiao Wang1、*
Author Affiliations
  • 1College of Textile and Clothing Engineering, Soochow University, Suzhou 215123, Jiangsu, China
  • 2State Key Laboratory of Fluid Power and Electromechanical Systems, School of Mechanical Engineering, Zhejiang University, Hangzhou 310027, Zhejiang, China
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    Figures & Tables(10)
    Thermoelectric effect. (a) Seebeck effect for power generation; (b) Peltier effect for refrigeration; (c) Thomson effect for cooling or heating
    Preparation method of stretchable thermoelectric fibers. (a) Schematic of the chemical structure of PEDOT∶PSS and WPU, as well as the wet spinning device for producing PEDOT∶PSS/WPU composite fiber[69]; (b)(c) optical micrographs of PEDOT: PSS/WPU composite fiber in relaxed and stretched states[69]; (d) schematic of an experimental device for manufacturing CNT composite TE fiber[70]; (e) schematic of the preparation process of stretchable thermoelectric fiber yarn[71]; (f) stress-strain curves of thermoelectric fibers and pure PU fiber[71]; (g) resistance change of thermoelectric fibers under different strains[71]
    Preparation method of stretchable TE fibers. (a) Schematic of continuous alternating extrusion process[73]; (b) schematic of automatic extrusion section assembly line[73]; (c) Seebeck coefficient and conductivity of thermoelectric fibers with different PEI contents[73]; (d) schematic of the fabrication of TE fibers[74]
    Structural design of stretchable thermoelectric spiral fibers. (a) Schematic of hydrogels with different macromolecular conformations[75]; (b) process of Janus fibers continuously prepared by parallel dual channel spinning, and spiral fibers prepared by strain programming[75]; (c) formation of helical Janus fiber in response to 900% prestrain[75]; (d) spiral fibers formed under prestrain of 400% and 900%[75]; (e) relationship between diameter and number of coils of spiral fibers and prestrain[75]; (f) structural schematic of 3D thermoelectric spiral coil[76]; (g) schematic of preparing spiral thermoelectric structures based on screw templates[77]
    Thermoelectric woven fabric. (a)(b) Schematic of TET in 3D and 2D modes[78]; (c) relationship between the output voltage and temperature difference of the two modes[78]; (d) structural schematic of TET[79]; (e) images of twisting, knotting, bending, and stretching TETs[79]; (f) schematic of energy collection and heat conduction in woven fabrics[80]; (g) schematic of structural changes during fabric stretching [80]
    Application of stretchable thermoelectric fibers in self-powered sensors. (a) Voltage signal of fibers under periodic heating[69]; (b) voltage signal of stretched fibers under different temperature differences[69]; (c)(d) voltage signal of fibers under finger touch and non-contact cold source stimulation conditions under repeated stretching [69]; (e) intelligent gloves based on thermoelectric fibers[71]; (f) thermal response time of the output voltage and voltage signal of smart gloves when they come into contact with hot and cold water respectively[71]; (g) change in resistance of fibers under different strains[83]; (h) change of fiber current at~10% strain[83]; (i) change of fiber open circuit voltage under different temperature differences and strains[83]
    TEG for thermal energy harvesting. (a) Photo of Janus hydrogel spring composed of >100 TE coils connected in series[75]; (b) photo of wearable TE bracelets[75]; (c) voltage and current of TE bracelets and coils[75]; (d) infrared image of TE coil wrapped around hot water pipes[75]; (e) cross section infrared and optical images of the TE device[69]; (f) open circuit voltage change before and after placement of the TE device on the forearm[69]; (g) TEG pictures[78]; (h) output voltage of TEG (15 units)[78]
    Cooling TET. (a)(b) Schematic of the cooling device TET for thermal regulation of the human body[79]; (c) cooling effect of TET over time[79]
    • Table 1. Common TE materials and properties

      View table

      Table 1. Common TE materials and properties

      CategoryMaterialσ /(S·cm-1S /(µV·K-1PF /(µW·m-1·K-2ZTReference
      Organic TE materialPEDOT∶PSS6564815525
      PEDOT∶PSS37481697.126
      PANI1300.00427
      PPy221.710.10.0228
      P3BT100411629
      PA1111028.48960.3830
      Inorganic TE materialSb2Te37031601800.331
      Bi2Te342115.39.90.0432
      Pb0.95Ce0.05Te357-1508000.2433
      PbTe333-22516900.3433
      Bi2Te30.02-1660.0434
      Bi2Se3518032.600.0235
      SnSe56.4306.91123236
      Carbon TE material and compositeSWCNT/PEI1950-37.628937
      SWCNT195040.237837
      CNT13.653501670.438
      SWCNT/TeNWs0.933038.530.0139
      PPy/SWCNT39922.219.740
      Bi2Te3/SWCNT524-172520.8941
    • Table 2. Materials and properties of stretchable fiber-based thermoelectric devices

      View table

      Table 2. Materials and properties of stretchable fiber-based thermoelectric devices

      n-Legp-legStrain /%

      Number of

      p-n segments /Number of fibers

      S /(µV·K-1σ /(S·cm-1Output power /nWReference
      DWCNT/dppp

      DWCNT/

      H-carbazole

      1001

      p:59.3

      n:-72.5

      p:400

      n:285.1

      10010

      SWCNT/

      WPU/PVA

      301440.469

      PEDOT∶PSS/

      WPU

      30118.97300.31170
      CNT/PEDOT∶PSS35014325771

      SWCNT/

      PVA/PEI

      SWCNT/PVA18264

      p:39.5

      n:-45

      2.5×10-373
      PEDOT∶PSS/Te NWs92832273197.974
      SWCNT/PANa5000>100345.575
      Si606465276
      Bi2Se3Bi2Te3100~101874277
      CNT/OA

      CNT/

      PEDOT:PSS

      8015

      p:39.5

      n:-45

      420078
      Bi0.4Sb1.3Te3400148036079
      Bi2Te3.3Se0.2400143041579
      AgNPs/GRPEDOT∶PSS10011081
      PEDOT∶PSS /WPU/IL600102121402582
      Fe(CN)64-/PAAmFe(CN)63-/PAAm1801

      p:1240

      n:-1050

      6×10-383
      PY/PEDOT∶PSS300115684
      PEDOT∶PSS17.5116200085
      Bi2Te3Sb2Te3101

      p:255

      n:-250

      p:1000

      n:220

      84086
      PEDOT∶PSS /Ag NWsPEDOT∶PSS23114.23202287
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    Zhe Wang, Wangkai Jiang, Kaichen Xu, Xiaoqiao Wang. Progress in Stretchable Fiber-Based Thermoelectric Materials and Devices[J]. Laser & Optoelectronics Progress, 2023, 60(13): 1316010

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    Paper Information

    Category: Materials

    Received: Jun. 1, 2023

    Accepted: Jun. 20, 2023

    Published Online: Jul. 28, 2023

    The Author Email: Kaichen Xu (xukc@zju.edu.cn), Xiaoqiao Wang (xqwang@suda.edu.cn)

    DOI:10.3788/LOP231424

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