Issue 44, 2012

Printable electronics-compatible silicon nanoparticles prepared by the facile decomposition of SiS2 and their application in a back-to-back Schottky diode

Abstract

Crystalline silicon nanoparticles (size <5 nm) are synthesized at room temperature by the decomposition of silicon sulfide (SiS2) in a water–acid mixture followed by chemical etching. Grey free-standing silicon nanoparticles are obtained after the decomposed product is etched with a mixture of hydrofluoric acid (HF), hydrogen peroxide (H2O2) and ethanol. These silicon nanoparticles are not capped with any organic ligands, making them suitable for electronic applications. For the preparation of a functional Si nanoparticle dispersion, the silicon nanoparticle suspension is prepared by re-dispersing in benzonitrile or in ethanol by incorporating polypropylene glycol (PPG) as a binder. An Al/Si-nanoparticle/n++-Si back-to-back Schottky diode is fabricated from both the Si nanoparticle suspension and the ink, and the charge transport mechanism is studied as the working temperature increases. Such versatility of these silicon nanoparticles can be ideal for any print-type deposition with a low-cost and large-area processing method.

Graphical abstract: Printable electronics-compatible silicon nanoparticles prepared by the facile decomposition of SiS2 and their application in a back-to-back Schottky diode

Supplementary files

Article information

Article type
Paper
Submitted
09 Aug 2012
Accepted
19 Sep 2012
First published
21 Sep 2012

J. Mater. Chem., 2012,22, 23553-23560

Printable electronics-compatible silicon nanoparticles prepared by the facile decomposition of SiS2 and their application in a back-to-back Schottky diode

P. V. More, S. Jeong, J. Lee, Y. Seo, B. Ryu and Y. Choi, J. Mater. Chem., 2012, 22, 23553 DOI: 10.1039/C2JM35349K

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