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Flexible RFID Tag Metal Antenna on Paper‐Based Substrate by Inkjet Printing Technology
Author(s) -
Wang Yan,
Yan Chuan,
Cheng SiYuan,
Xu ZhaoQuan,
Sun Xuping,
Xu YouHe,
Chen JinJu,
Jiang Zhi,
Liang Kun,
Feng ZheSheng
Publication year - 2019
Publication title -
advanced functional materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.069
H-Index - 322
eISSN - 1616-3028
pISSN - 1616-301X
DOI - 10.1002/adfm.201902579
Subject(s) - materials science , substrate (aquarium) , inkwell , fabrication , electrical conductor , radio frequency identification , antenna (radio) , nanotechnology , optoelectronics , composite material , computer science , telecommunications , geology , medicine , alternative medicine , computer security , pathology , oceanography
Abstract A reliable and low‐cost solution‐processing procedure to synthesize a highly adhesive flexible metal antenna with low resistivity for radio‐frequency identification device (RFID) tags on paper substrates via inkjet printing combined with surface modification and electroless deposition (ELD) is demonstrated in this paper. Through the surface modification of colloidal solution of hydrolyzed stannous chloride and chitosan solution, the paper‐based substrate is able to reduce the penetration rate of ink and further increase the adsorption amount of silver ions, which could create a catalytic activating layer to catalyze the subsequent ELD of a conductive deposited metal antenna. The resulting metal antenna for RFID tags presents good adhesive strength and low resistivity of 2.58 × 10 −8 Ω·m after 40 min of ELD, and maintains a reliable reading range of RFID tags even after over 1000 times of bending and mechanical stress. Consequently, the developed technology proposed allows for cheap, efficient, and massive production of metal antenna for paper‐based RFID tags with excellent mechanical and electrical properties. Furthermore, this process is especially advantageous for the fabrication of next‐generation flexible electronic devices based on paper substrates.