Conductance-strain behavior in silver-nanowire composites: network properties of a tunable strain sensor

被引:7
|
作者
Glier, Tomke E. [1 ]
Betker, Marie [1 ]
Grimm-Lebsanft, Benjamin [1 ]
Scheitz, Sarah [1 ]
Matsuyama, Toru [2 ]
Akinsinde, Lewis O. [1 ]
Ruebhausen, Michael [1 ]
机构
[1] Univ Hamburg, Ctr Free Electron Laser Sci CFEL, Inst Nanostruktur & Festkorperphys, Luruper Chaussee 149, D-22761 Hamburg, Germany
[2] Max Planck Inst Struktur & Dynam Mat, Luruper Chaussee 149, D-22761 Hamburg, Germany
关键词
silver-nanowire composite; strain sensor; strain-resistance behavior; flexible electronics; functional printing; Monte Carlo simulation; TRANSPARENT; PERCOLATION; CONDUCTIVITY; ELECTRONICS; TRANSISTORS; SKIN;
D O I
10.1088/1361-6528/ac04a4
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Highly flexible and conductive nano-composite materials are promising candidates for stretchable and flexible electronics. We report on the strain-resistance relation of a silver-nanowire photopolymer composite during repetitive stretching. Resistance measurements reveal a gradual change of the hysteretic resistance curves towards a linear and non-hysteretic behavior. Furthermore, a decrease in resistance and an increase in electrical sensitivity to strain over the first five stretching cycles can be observed. Sensitivity gauge factors between 10 and 500 at 23% strain were found depending on the nanowire concentration and stretching cycle. We model the electrical behavior of the investigated silver nanowire composites upon repetitive stretching considering the strain induced changes in the local force distribution within the polymer matrix and the tunnel resistance between the nanowires by using a Monte Carlo method.
引用
下载
收藏
页数:8
相关论文
共 50 条
  • [1] Electrical and network properties of flexible silver-nanowire composite electrodes under mechanical strain
    Glier, Tomke E.
    Betker, Marie
    Witte, Maximilian
    Matsuyama, Toru
    Westphal, Lea
    Grimm-Lebsanft, Benjamin
    Biebl, Florian
    Akinsinde, Lewis O.
    Fischer, Frank
    Ruebhausen, Michael
    NANOSCALE, 2020, 12 (46) : 23831 - 23837
  • [2] Direct Printed Silver Nanowire Strain Sensor for Early Extravasation Detection
    Lu, Hsuan-Chin
    Liao, Ying-Chih
    NANOMATERIALS, 2021, 11 (10)
  • [3] Silver nanowire/polyacrylamide/gelatin flexible stress, strain and temperature sensor
    Sun, Shuang
    Maimaitiyiming, Xieraili
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2023, 675
  • [4] Tunable strain gauges based on two-dimensional silver nanowire networks
    Ho, Xinning
    Cheng, Chek Kweng
    Tey, Ju Nie
    Wei, Jun
    NANOTECHNOLOGY, 2015, 26 (19)
  • [5] Silver Nanowire-Based Flexible Strain Sensor for Human Motion Detection
    Mijit, Abduweli
    Li, Shuo
    Wang, Qiang
    Li, Mingzhou
    Tai, Yanlong
    SENSORS, 2024, 24 (11)
  • [6] Flexible and transparent strain sensor made with silver nanowire-coated cellulose
    Mun, Seongcheol
    Zhai, Lindong
    Min, Seung-Ki
    Yun, Youngmin
    Kim, Jaehwan
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2016, 27 (08) : 1011 - 1018
  • [7] Highly Stretchable and Sensitive Strain Sensor Based on Silver Nanowire-Elastomer Nanocomposite
    Amjadi, Morteza
    Pichitpajongkit, Aekachan
    Lee, Sangjun
    Ryu, Seunghwa
    Park, Inkyu
    ACS NANO, 2014, 8 (05) : 5154 - 5163
  • [8] Ultralight, flexible and conductive silver nanowire/nanofibrillated cellulose aerogel for multifunctional strain sensor
    Cheng, Rui
    Zeng, Jinsong
    Wang, Bin
    Li, Jinpeng
    Cheng, Zheng
    Xu, Jun
    Gao, Wenhua
    Chen, Kefu
    CHEMICAL ENGINEERING JOURNAL, 2021, 424
  • [9] Self-healable Silver Nanowire-Based Composite for Elastic Strain Sensor
    Liu, Feng
    Li, Jinhui
    Han, Fei
    Ling, Lei
    Wu, Xinxiu
    Zhang, Guoping
    Sun, Rong
    Wong, Ching Ping
    ADVANCED FUNCTIONAL MATERIALS (CMC 2017), 2018, : 389 - 397
  • [10] Flexible and stretchable strain sensors fabricated by inkjet printing of silver nanowire-ecoflex composites
    R. Madhavan
    Journal of Materials Science: Materials in Electronics, 2022, 33 : 3465 - 3484