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化学进展 2017, Vol. 29 Issue (8): 892-901 DOI: 10.7536/PC170402 前一篇   后一篇

• 综述 •

基于银纳米线导电网络的电子纺织品

丁晨, 赵兵*, 祁宁   

  1. 苏州大学纺织与服装工程学院 现代丝绸国家工程实验室 苏州 215000
  • 收稿日期:2017-04-05 修回日期:2017-06-12 出版日期:2017-08-15 发布日期:2017-07-24
  • 通讯作者: 赵兵,E-mail:zhaobing@suda.edu.cn E-mail:zhaobing@suda.edu.cn
  • 基金资助:
    国家自然科学基金项目(No.51503137,51373110)资助

Electronic Textiles Based on Silver Nanowire Conductive Network

Ning Qi, Bing Zhao*, Ning Qi   

  1. National Engineering Laboratory for Modern Silk, College of Textile and Clothing Engineering, Soochow University, Suzhou 215000, China
  • Received:2017-04-05 Revised:2017-06-12 Online:2017-08-15 Published:2017-07-24
  • Supported by:
    The work was supported by the National Natural Science Foundation of China (No. 51503137, 51373110).
随着现代电子产品向微型化、集成化和柔性化的方向发展,以及人们对功能性、智能化和可穿戴纺织品需求的不断提高,电子纺织品(E-textiles)成为研究热点。银纳米线(AgNWs)具有高比表面积、导热、导电、透光、延展性、机械强度和柔性等优异性能,将AgNWs与纺织品结合具有制备步骤简单、易于集成、基本不影响织物的穿着舒适性、耐用性好、成本低、获得抗菌和防紫外功能等优势,是制备E-textiles的理想方法之一。本文首先介绍了共混法和后整理法这两种AgNWs导电纺织品的制备方法,然后介绍了近年来AgNWs在保暖纺织品、电热纺织品、柔性电子传感器、超弹性导电复合纤维、自供能纺织品等领域的研究进展。最后指出AgNWs在E-textiles领域存在的不足和未来的研究方向,以期为E-textiles的研究提供参考和借鉴。
With the development of modern electronic products into the direction of miniaturization, integration and flexibility, and the increasing demand for functional, intelligent and wearable textiles, electronic textiles (E-textiles) become a research hotspot. Due to excellent performances such as high specific surface area, thermal conductivity, electrical conductivity, transmittance, ductility, mechanical strength and flexibility, silver nanowires (AgNWs) combined with textiles are one of the ideal methods for preparation of E-textiles, which own the advantages of simple preparation, easy integration, having no adverse effects on wearing comfort, durability, low cost, obtaining antibacterial and anti-UV performance. This paper firstly introduces blending methods and finishing methods in preparing AgNWs conductive textiles. The research progress of AgNWs in thermal textiles, heater textiles, flexible electronic sensors, super-elastic conductive composite fibers and self-powered textiles in recent years is discussed. The existing problems and the future directions are also pointed out in order to provide reference for the future research of AgNWs in E-textiles finally.
Contents
1 Introduction
2 Methods for preparing AgNWs conductive textiles
2.1 Blending methods
2.2 Finishing methods
3 Application
3.1 Thermal textile and heater textiles
3.2 Flexible electronic sensors
3.3 Super-elastic conductive composite fibers
3.4 Self-powered textiles
4 Conclusion

中图分类号: 

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[1] Shim B S, Chen W, Doty C, Xu C, Kotov N A. Nano Lett., 2008, 8(12):4151.
[2] Gulzar U, Goriparti S, Miele E, Li T, Maidecchi G, Toma A, De Angelis F, Capiglia C, Zaccaria R P. J. Mater. Chem. A, 2016, 4(43):16771.
[3] Stoppa M, Chiolerio A. Sensors, 2014, 14(7):11957.
[4] Cherenack K, van Pieterson L. J. Appl. Phys., 2012, 112:091301.
[5] Zeng W, Shu L, Li Q, Chen S, Wang F, Tao X. Adv. Mater., 2014, 26(31):5310.
[6] Liu S, Hu M, Yang J. J. Mater. Chem. C, 2016, 4(6):1320.
[7] Weng W, Chen P, He S, Sun X, Peng H. Angew. Chem. Int. Ed., 2016, 55(21):6140.
[8] Carpi F, De Rossi D. IEEE Trans. Inf. Technol. Biomed., 2005, 9(3):295.
[9] Marculescu D, Marculescu R, Zamora N H, Stanley-Marbell P, Khosla P K, Park S, Jayaraman S, Jung S, Lauterbach C, Weber W, Kirstein T, Cottet D, Grzyb J, Troster G, Jones M, Martin T, Nakad Z. P. IEEE, 2003, 91(12):1995.
[10] 张杰(Zhang J), 刘晓霞(Liu X X). 上海纺织科技(Shanghai Textile Science & Technology), 2014, (07):1.
[11] Hansora D P, Shimpi N G, Mishra S. RSC Adv., 2015, 5(130):107716.
[12] Ryan J D, Mengistie D A, Gabrielsson R, Lund A, Muller C. ACS Appl. Mater. Inter., 2017, 9(10):9045.
[13] Guo Y, Otley M T, Li M, Zhang X, Sinha S K, Treich G M, Sotzing G A. ACS Appl. Mater. Inter., 2016, 8(40):26998.
[14] 廖春荣(Liao C R), 熊峰(Xiong F), 李贤军(Li X J), 吴义强(Wu Y Q), 罗勇锋(Luo Y F). 物理化学学报(Acta Physico-Chimica Sinica), 2017, (02):329.
[15] Takamatsu S, Lonjaret T, Ismailova E, Masuda A, Itoh T, Malliaras G G. Adv. Mater., 2016, 28(22SI):4485.
[16] 夏凯伦(Xia K L), 蹇木强(Jian M Q), 张莹莹(Zhang Y Y). 物理化学学报(Acta Physico-Chimica Sinica), 2016, (10):2427.
[17] Hu L, Pasta M, La Mantia F, Cui L, Jeong S, Deshazer H D, Choi J W, Han S M, Cui Y. Nano Lett., 2010, 10(2):708.
[18] Aboutalebi S H, Jalili R, Esrafilzadeh D, Salari M, Gholamvand Z, Yamini S A, Konstantinov K, Shepherd R L, Chen J, Moulton S E, Innis P C, Minett A I, Razal J M, Wallace G G. ACS Nano, 2014, 8(3):2456.
[19] Cheng H, Dong Z, Hu C, Zhao Y, Hu Y, Qu L, Chena N, Dai L. Nanoscale, 2013, 5(8):3428.
[20] Cheng Y, Zhang H, Wang R, Wang X, Zhai H, Wang T, Jin Q, Sun J. ACS Appl. Mater. Inter., 2016, 8(48):32925.
[21] Ding S, Jiu J, Gao Y, Tian Y, Araki T, Sugahara T, Nagao S, Nogi M, Koga H, Suganuma K, Uchida H. ACS Appl. Mater. Inter., 2016, 8(9):6190.
[22] Wang T, Wang R, Cheng Y, Sun J. ACS Appl. Mater. Inter., 2016, 8(14):9297.
[23] Yun Y J, Hong W G, Kim W, Jun Y, Kim B H. Adv. Mater., 2013, 25(40):5701.
[24] 赵兵(Zhao B), 祁宁(Qi N). 印染(Dyeing & Finishing), 2014, (05):49.
[25] Di J, Zhang X, Yong Z, Zhang Y, Li D, Li R, Li Q. Adv. Mater., 2016, 28(47SI):10529.
[26] Zhao B, Qi N, Zhang K, Gong X. Phys. Chem. Chem. Phys., 2016, 18(22):15289.
[27] 段莎莎(Duan S S), 张玲(Zhang L), 李春忠(Li C Z). 中国材料进展(Materials China), 2016(07):545.
[28] 赵兵(Zhao B). 苏州大学博士论文(Doctoral Dissertation of Soochow University), 2016.
[29] Qi N, Zhao B, Wang S, Al-Deyabc S S, Zhang K. RSC Adv., 2015, 5(63):50878.
[30] Liu Y, Qi N, Song T, Jia M, Xia Z, Yuan Z, Yuan W, Zhang K, Sun B. ACS Appl. Mater. Inter., 2014, 6(23):20670.
[31] Lee J, Connor S T, Cui Y, Peumans P. Nano Lett., 2008, 8(2):689.
[32] Hu L, Kim H S, Lee J, Peumans P, Cui Y. ACS Nano, 2010, 4(5):2955.
[33] Kim A, Kim M K, Hudaya C, Park J H, Byun D, Lim J C, Lee J K. Nanoscale, 2016, 8(6):3307.
[34] Li M, Ji S, Pan J, Wu H, Zhong L, Wang Q, Li F, Li G. J. Mater. Chem. A, 2014, 2(48):20470.
[35] 赵兵(Zhao B), 祁宁(Qi N), 张克勤(Zhang K Q). 化学进展(Progress in Chemistry), 2016, 28(11):1615.
[36] Sannicolo T, Lagrange M, Cabos A, Celle C, Simonato J, Bellet D. Small, 2016, 12(44):6052.
[37] 陈禹夫(Chen Y F),李祥高(Li X G),肖殷(Xiao Y),王世荣(Wang S R). 化学进展(Progress in Chemistry), 2017, (04):359.
[38] Hsu P, Liu X, Liu C, Xie X, Lee H R, Welch A J, Zhao T, Cui Y. Nano Lett., 2015, 15(1):365.
[39] Simoncic B, Klemencic D. Text. Res. J., 2016, 86(2):210.
[40] Yu Y, Ma C M, Teng C, Huang Y, Lee S, Wang I, Wei M. Mater. Chem. Phys., 2012, 136(2/3):334.
[41] Atwa Y, Maheshwari N, Goldthorpe I A. J. Mater. Chem. C, 2015, 3(16):3908.
[42] Xu F, Zhu Y. Adv. Mater., 2012, 24(37):5117.
[43] Lee S, Shin S, Lee S, Seo J, Lee J, Son S, Cho H J, Algadi H, Al-Sayari S, Kim D E, Lee T. Adv. Funct. Mater., 2015, 25(21):3114.
[44] Choi S, Park J, Hyun W, Kim J, Kim J, Lee Y B, Song C, Hwang H J, Kim J H, Hyeon T, Kim D. ACS Nano, 2015, 9(6):6626.
[45] Nateghi M R, Shateri-Khalilabad M. Carbohyd. Polym., 2015, 117:160.
[46] Giesz P, Mackiewicz E, Nejman A, Celichowski G, Cieslak M. Cellulose, 2017, 24(1):409.
[47] 修阿男(Xiu A N). 苏州大学硕士论文(Master Dissertation of Soochow University), 2015.
[48] 张自强(Zhang Z Q). 南京邮电大学硕士论文(Master Dissertation of Nanjing University of Posts and Telecommunications), 2016.
[49] Kim A, Ahn J, Hwang H, Lee E, Moon J. Nanoscale, 2017, 9(18):5773.
[50] Wu C, Kim T W, Li F, Guo T. ACS Nano, 2016, 10(7):6449.
[51] Wei Y, Chen S, Lin Y, Yuan X, Liu L. J. Mater. Chem. C, 2016, 4(5):935.
[52] Wu M, Ma B, Pan T, Chen S, Sun J. Adv. Funct. Mater., 2016, 26(4):569.
[53] Shen T, Liu Y, Zhu Y, Yang D, Sacher E. Appl. Surf. Sci., 2017, 411:411.
[54] Xu S, Song J, Zhu C, Morikawa H. Mater. Lett., 2017, 188:215.
[55] 刘宗光(Liu Z G), 屈树新(Qu S X), 翁杰(Weng J). 化学进展(Progress in Chemistry), 2015, (2/3):212.
[56] Yu Z, Gao Y, Di X, Luo H. RSC Adv., 2016, 6(72):67771.
[57] Wu C, Kim T W, Guo T, Li F. Nano Energy, 2017, 32:367.
[58] Hsu P, Song A Y, Catrysse P B, Liu C, Peng Y, Xie J, Fan S, Cui Y. Science, 2016, 353(6303):1019.
[59] Hong S, Lee H, Lee J, Kwon J, Han S, Suh Y D, Cho H, Shin J, Yeo J, Ko S H. Adv. Mater., 2015, 27(32):4744.
[60] Ergun O, Coskun S, Yusufoglu Y, Unalan H E. Nanotechnology, 2016, 27:445708.
[61] Lee J G, Lee J H, An S, Kim D, Kim T, Al-Deyab S S, Yarin A L, Yoon S S. J. Mater. Chem. A, 2017, 5(14):6677.
[62] Doganay D, Coskun S, Genlik S P, Unalan H E. Nanotechnology, 2016, 27:435201.
[63] 蔡依晨(Cai Y C), 黄维(Huang W), 董晓臣(Dong X C). 科学通报(Chinese Science Bulletin), 2017, (07):635.
[64] Yun S, Park S, Park B, Kim Y, Park S K, Nam S, Kyung K. Adv. Mater., 2014, 26(26):4474.
[65] Yao H, Ge J, Wang C, Wang X, Hu W, Zheng Z, Ni Y, Yu S. Adv. Mater., 2013, 25(46):6692.
[66] Bae S, Lee Y, Sharma B K, Lee H, Kim J, Ahn J. Carbon, 2013, 51:236.
[67] Chen S, Wei Y, Yuan X, Lin Y, Liu L. J. Mater. Chem. C, 2016, 4(19):4304.
[68] 孙晓丹(Sun X D),刘中群(Liu Z Q),颜昊(Yan H). 无机材料学报(Journal of Inorganic Materials), 2016, (04):337.
[69] 钱鑫(Qian X),苏萌(Su M),李风煜(Li F Y),宋延林(Song Y L). 化学学报(Acta Chimica Sinica), 2016, (07):565.
[70] Yao S, Myers A, Malhotra A, Lin F, Bozkurt A, Muth J F, Zhu Y. Adv. Healthc. Mater., 2017, 6(6):1601159.
[71] Myers A C, Huang H, Zhu Y. RSC Adv., 2015, 5(15):11627.
[72] Han S, Kim M K, Wang B, Wie D S, Wang S, Lee C H. Adv. Mater., 2016, 28(46):10257.
[73] Wei Y, Chen S, Dong X, Lin Y, Liu L. Carbon, 2017, 113:395.
[74] Kim Y, Zhu J, Yeom B, Di Prima M, Su X, Kim J, Yoo S J, Uher C, Kotov N A. Nature, 2013, 500(7460):59.
[75] Xu J, Chen J, Zhang M, Hong J, Shi G. Adv. Electron. Mater., 2016, 2:16000226.
[76] Kim K, Jeong D, Jang N, Ha S, Kim J. RSC Adv., 2016, 6(62):6896.
[77] Liu Z F, Fang S, Moura F A, Ding J N, Jiang N, Di J, Zhang M, Lepro X, Galvao D S, Haines C S, Yuan N Y, Yin S G, Lee D W, Wang R, Wang H Y, Lv W, Dong C, Zhang R C, Chen M J, Yin Q, Chong Y T, Zhang R, Wang X, Lima M D, Ovalle-Robles R, Qian D, Lu H, Baughman R H. Science, 2015, 349(6246):400.
[78] Chun K, Oh Y, Rho J, Ahn J, Kim Y, Choi H R, Baik S. Nat. Nanotechnol., 2010, 5(12):853.
[79] Cheng Y, Wang R, Sun J, Gao L. ACS Nano, 2015, 9(4):3887.
[80] 赵兵(Zhao B), 祁宁(Qi N), 张德锁(Zhang D S), 李青松(Li Q S), 张克勤(Zhang K Q). 材料导报(Materials Review), 2017, (01):126.
[81] 刘海涛(Liu H T), 张迎九(Zhang Y J), 潘曹峰(Pan C F). 科学通报(Chinese Science Bulletin), 2016, (12):1298.
[82] 潘春旭(Pan C X), 李伟平(Li W P), 张豫鹏(Zhang Y P), 余超智(Yu C Z), 黎德龙(Li D L). 无机材料学报(Journal of Inorganic Materials), 2014, (09):897.
[83] Guo Y, Li K, Hou C, Li Y, Zhang Q, Wang H. ACS Appl. Mater. Inter., 2016, 8(7):4676.
[84] 张智涛(Zhang Z T),张晔(Zhang Y),李一明(Li Y M),彭慧胜(Peng H S). 高分子学报(Acta Polymerica Sinica), 2016, (10):1284.
[85] Chen T, Qiu L, Yang Z, Peng H. Chem. Soc. Rev., 2013, 42(12):5031.
[86] Sun H, Zhang Y, Zhang J, Sun X M, Peng H S. Nature Rev. Mater., 2017, 2:17023.
[87] 李政道(Li Z D),陈亮(Chen L),周勇(Zhou Y),邹志刚(Zou Z G). 科学通报(Chinese Science Bulletin), 2017, (14):1480.
[88] El-Shishtawy R M, Asiri A M, Abdelwahed N A M, Al-Otaibi M M. Cellulose, 2011, 18(1):75.
[89] Pulit-Prociak J, Chwastowski J, Kucharski A, Banach M. Appl. Surf. Sci., 2016, 385:543.
[90] Wang J, Yan C, Kang W, Lee P S. Nanoscale, 2014, 6(18):10734.
[91] Wu H, Kong D, Ruan Z, Hsu P, Wang S, Yu Z, Carney T J, Hu L, Fan S, Cui Y. Nat. Nanotechnol., 2013, 8(6):421.
[92] Marambio-Jones C, Hoek E M V. J. Nanopart. Res., 2010, 12(5):1531.
[93] Puzyn T, Rasulev B, Gajewicz A, Hu X, Dasari T P, Michalkova A, Hwang H, Toropov A, Leszczynska D, Leszczynski J. Nat. Nanotechnol., 2011, 6(3):175.
[94] Ji S, He W, Wang K, Ran Y, Ye C. Small, 2014, 10(23):4951.
[95] 史菁菁(Shi J J),郭星(Guo X),陈人杰(Chen R J),吴锋(Wu F). 化学进展(Progress in Chemistry), 2016, (04):577.
[96] Huang Y, Hu H, Huang Y, Zhu M, Meng W, Liu C, Pei Z, Hao C, Wang Z, Zhi C. ACS Nano, 2015, 9(5):4766.
[97] Bao L, Li X. Adv. Mater., 2012, 24(24):3246.
[98] Zhang X, Lai Y, Ge M, Zheng Y, Zhang K, Lin Z. J. Mater. Chem. A, 2015, 3(24):12761.
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