Title :
Highly conductive nanosilver ink treated at mild temperatures by reducing the amount of PVP
Author :
Fu Jilan ; Mo Lixin ; Li Yaling ; Li Weiwei ; Li Wenbo ; Ran Jun ; Fan Xinming ; Zhao Xizhe ; Li Luhai
Author_Institution :
Beijing Printed Electron. Eng. Technol. Res. Center, Beijing Inst. of Graphic Commun., Beijing, China
Abstract :
Silver nanoparticles colloid was obtained by reducing the high molar concentration of AgNO3 (up to 3.92 M) with the hydrazine hydrate (H4N2 · H2O) as reductant in the presence of polyethylene pyrrole (PVP) as the protectant. It was well known that the polymer protective agent capped on the surface of silver nanoparticles could control the particles growth and stabilize the nanosilver suspension. Meanwhile, the insulative PVP capped on the surface of nanosilver could prevent the transfer of electrons, resulting in the conductivity decreasing of the corresponding nanosilver films. Thus, the amount of PVP should be reduced in order to improve its conductivity. The silver nanoparticles was treated by the chemical sedimentation, which is the most widely used solid-liquid separation method in the preparation of nanosilver conductive printing ink, for its low costing and without destroying the structure of the silver nanoparticles. It was found that the treatment can effectively reduce the amount of PVP. Good dispersion and electrical conductivity nanosilver ink can be obtained by acetone sedimentation for three times. The average size of the particles after sedimentation is 120.3 nm, while the initial size is 92 nm and no precipitation was observed even after aging for 15 days. Surface resistance of the silver layer coated on PET can be reduced to 226.4 mΩ/□ after heating at 100°C for 30s, and the conductive ink with these properties can be widely used in preparation of transparent conductive film and RFID antennas.
Keywords :
ageing; colloids; electrical conductivity; ink; metallic thin films; nanofabrication; nanoparticles; particle size; sedimentation; silver; surface resistance; suspensions; Ag; PET; RFID antennas; acetone sedimentation; aging; chemical sedimentation; electrical conductivity nanosilver ink; electron transfer; heating; hydrazine hydrate; insulative PVP; mild temperature; molar concentration; nanosilver conductive printing ink; nanosilver films; nanosilver suspension; particle size; polyethylene pyrrole; polymer protective agent; silver layer; silver nanoparticle colloid; solid-liquid separation method; surface resistance; temperature 100 degC; time 15 day; time 30 s; transparent conductive film; DH-HEMTs; Decision support systems; PVP; Silver nanoparticles; conductivity;
Conference_Titel :
Nano/Micro Engineered and Molecular Systems (NEMS), 2013 8th IEEE International Conference on
Conference_Location :
Suzhou
Electronic_ISBN :
978-1-4673-6351-8
DOI :
10.1109/NEMS.2013.6559806