Stumbling through the Research Wilderness, Standard Methods To Shine Light on Electrically Conductive Nanocomposites for Future Healthcare Monitoring

被引:43
作者
Boland, Conor S. [1 ]
机构
[1] Univ Sussex, Sch Math & Phys Sci, Brighton BN1 9QH, E Sussex, England
关键词
nanomaterial; polymer; nanocomposite; strain sensor; electromechanics; medical sensor; health sensor; body sensor; STRAIN SENSOR; POLYMER COMPOSITES; MECHANICAL-PROPERTIES; RANGE-DETECTION; CARBON; GRAPHENE; RESISTIVITY; SKIN; EXFOLIATION; SENSITIVITY;
D O I
10.1021/acsnano.9b06847
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Electrically conductive nanocomposites are an exciting ever-expanding area of research that has yielded many versatile technologies for wearable health devices. Acting as strain-sensing materials, real-time medical diagnostic tools based on these materials may very well lead to a golden age of healthcare. Currently, the goal in research is to create a material that simultaneously has both a large gauge factor (G) and sensing range. However, a weakness in the area of electromechanical research is the lack of standardization in the reporting of the figure of merit (i.e., G) and the need for other intrinsic metrics to give researchers a more complete view of the research landscape of resistive-type sensors. A paradigm shift in the way in which data are reported is required, to push research in the right direction and to facilitate achieving research goals. Here, we report a standardized method for reporting strain-sensing performance and the introduction of the working factor (W) and the Young's modulus (Y) of a material as figures of merit for sensing materials. Using this standard method, we can define the benchmarks for an optimum sensing material (G > 7, W > 1, Y < 300 kPa) using limits set by standard commercial materials and the human body. Using extrapolated data from 200 publications normalized to this standard method, we can review what composite types meet these benchmark limits, what governs composite performances, the literary trends in composites, and the future prospects of research.
引用
收藏
页码:13627 / 13636
页数:10
相关论文
共 73 条
[51]   Design and Fabrication of Soft Artificial Skin Using Embedded Microchannels and Liquid Conductors [J].
Park, Yong-Lae ;
Chen, Bor-Rong ;
Wood, Robert J. .
IEEE SENSORS JOURNAL, 2012, 12 (08) :2711-2718
[52]   Hyperelastic pressure sensing with a liquid-embedded elastomer [J].
Park, Yong-Lae ;
Majidi, Carmel ;
Kramer, Rebecca ;
Berard, Phillipe ;
Wood, Robert J. .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2010, 20 (12)
[53]  
Paton KR, 2014, NAT MATER, V13, P624, DOI [10.1038/NMAT3944, 10.1038/nmat3944]
[54]   2D end-to-end carbon nanotube conductive networks in polymer nanocomposites: a conceptual design to dramatically enhance the sensitivities of strain sensors [J].
Pu, Jun-Hong ;
Zha, Xiang-Jun ;
Zhao, Min ;
Li, Shengyao ;
Bao, Rui-Ying ;
Liu, Zheng-Ying ;
Xie, Bang-Hu ;
Yang, Ming-Bo ;
Guo, Zhanhu ;
Yang, Wei .
NANOSCALE, 2018, 10 (05) :2191-2198
[55]   Electroconductive Biohybrid Collagen/Pristine Graphene Composite Biomaterials with Enhanced Biological Activity [J].
Ryan, Alan J. ;
Kearney, Cathal J. ;
Shen, Nian ;
Khan, Umar ;
Kelly, Adam G. ;
Probst, Christopher ;
Brauchle, Eva ;
Biccai, Sonia ;
Garciarena, Carolina D. ;
Vega-Mayoral, Victor ;
Loskill, Peter ;
Kerrigan, Steve W. ;
Kelly, Daniel J. ;
Schenke-Layland, Katja ;
Coleman, Jonathan N. ;
O'Brien, Fergal J. .
ADVANCED MATERIALS, 2018, 30 (15)
[56]  
Sahini M., 1994, Applications of Percolation Theory
[57]   Strain-Responsive Polyurethane/PEDOT:PSS Elastomeric Composite Fibers with High Electrical Conductivity [J].
Seyedin, Mohammad Ziabari ;
Razal, Joselito M. ;
Innis, Peter C. ;
Wallace, Gordon G. .
ADVANCED FUNCTIONAL MATERIALS, 2014, 24 (20) :2957-2966
[58]   A piezoresistive carbon filament polymer-matrix composite strain sensor [J].
Shui, XP ;
Chung, DDL .
SMART MATERIALS & STRUCTURES, 1996, 5 (02) :243-246
[59]   Graphene-based composite materials [J].
Stankovich, Sasha ;
Dikin, Dmitriy A. ;
Dommett, Geoffrey H. B. ;
Kohlhaas, Kevin M. ;
Zimney, Eric J. ;
Stach, Eric A. ;
Piner, Richard D. ;
Nguyen, SonBinh T. ;
Ruoff, Rodney S. .
NATURE, 2006, 442 (7100) :282-286
[60]   Influences from solvents on charge storage in titanium carbide MXenes [J].
Wang, Xuehang ;
Mathis, Tyler S. ;
Li, Ke ;
Lin, Zifeng ;
Vlcek, Lukas ;
Torita, Takeshi ;
Osti, Naresh C. ;
Hatter, Christine ;
Urbankowski, Patrick ;
Sarycheva, Asia ;
Tyagi, Madhusudan ;
Mamontov, Eugene ;
Simon, Patrice ;
Gogotsi, Yury .
NATURE ENERGY, 2019, 4 (03) :241-248