A Review on Materials and Technologies for Organic Large-Area Electronics

被引:54
作者
Buga, Claudia S. [1 ]
Viana, Julio C. [2 ]
机构
[1] Univ Minho, DTx Digital Transformat CoLAB, Campus Azurem,Bldg 1, P-4800058 Guimaraes, Portugal
[2] Univ Minho, IPC i3N Inst Polymers & Composites, Campus Azurem, P-4800058 Guimaraes, Portugal
关键词
additive manufacturing technologies; organic large‐ area electronics; organic materials; printed electronics; sustainable development; SENSORS;
D O I
10.1002/admt.202001016
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
New and innovative applications in the field of electronics are rapidly emerging. Such applications often require flexible or stretchable substrates, lightweight and transparent materials, and design freedom. This paper offers a complete overview concerning flexible electronics manufacturing, focusing on the materials and technologies that have been recently developed. This combination of materials and technologies aims to fuel a fast, economical, and environmentally sustainable transition from the conventional to the novel and highly customizable electronics. Organic conductors, semiconductors, and dielectrics have recently gathered lots of attention since they are compatible with printing technologies, and can be easily spread over large and flexible substrates. These printing technologies are usually simple and fast procedures, which rely on low-cost and recycle-friendly materials, intended for large-scale fabrication. Overall, even though organic large-area electronics manufacturing is still in its early stages of development, it is a field with tremendous potential that holds promise to revolutionize the way products are designed, developed, and processed from the factory premises to the consumers' hands. Besides, this technology is highly versatile and can be applied to a large array of sectors such as automotive, medical, home design, industrial, agricultural, among others.
引用
收藏
页数:44
相关论文
共 428 条
[1]   Roll-to-Roll Fabrication of Solution Processed Electronics [J].
Abbel, Robert ;
Galagan, Yulia ;
Groen, Pim .
ADVANCED ENGINEERING MATERIALS, 2018, 20 (08)
[2]   Wearable Bandage-Based Strain Sensor for Home Healthcare: Combining 3D Aerosol Jet Printing and Laser Sintering [J].
Agarwala, Shweta ;
Goh, Guo Liang ;
Truong-Son Dinh Le ;
An, Jianing ;
Peh, Zhen Kai ;
Yeong, Wai Yee ;
Kim, Young-Jin .
ACS SENSORS, 2019, 4 (01) :218-226
[3]   Inkjet-Printed Human Body Temperature Sensor for Wearable Electronics [J].
Ali, Shawkat ;
Khan, Saleem ;
Bermak, Amine .
IEEE ACCESS, 2019, 7 :163981-163987
[4]   Robotic colorectal surgery: summary of the current evidence [J].
Aly, E. H. .
INTERNATIONAL JOURNAL OF COLORECTAL DISEASE, 2014, 29 (01) :1-8
[5]   Flexible integrated circuits and multifunctional electronics based on single atomic layers of MoS2 and graphene [J].
Amani, Matin ;
Burke, Robert A. ;
Proie, Robert M. ;
Dubey, Madan .
NANOTECHNOLOGY, 2015, 26 (11)
[6]   Stretchable, Skin-Mountable, and Wearable Strain Sensors and Their Potential Applications: A Review [J].
Amjadi, Morteza ;
Kyung, Ki-Uk ;
Park, Inkyu ;
Sitti, Metin .
ADVANCED FUNCTIONAL MATERIALS, 2016, 26 (11) :1678-1698
[7]  
Analysis F., 2004, CHARACTERIZATION FAI
[8]   Poly(3,4-ethylenedioxythiophene):Poly(styrene sulfonate) Inkjet Inks Doped with Carbon Nanotubes and a Polar Solvent: The Effect of Formulation and Adhesion on Conductivity [J].
Angelo, Peter D. ;
Farnood, Ramin R. .
JOURNAL OF ADHESION SCIENCE AND TECHNOLOGY, 2010, 24 (03) :643-659
[9]  
[Anonymous], 2012, MATERION TECNHICAL P
[10]  
[Anonymous], OUR SOLUTIONS SHAPIN