Issue 31, 2015

Synthesis of single-crystalline GeS nanoribbons for high sensitivity visible-light photodetectors

Abstract

Single-crystalline GeS nanoribbons were synthesized by chemical vapor deposition for the first time. Structural characterization revealed that the nanoribbons grow along the [0[1 with combining overline]1] direction with a thickness of 20–50 nm, a width of several micrometers and a length of hundreds of micrometers. The GeS nanoribbons show a p-type behavior verified from the field effect transport measurement. The nanoribbon photodetectors respond to the entire visible incident light with a response edge at around 750 nm consistent with the band gap absorption of GeS. A strong nonlinear light-intensity-dependent response was observed between the measured illumination intensity from 0.25 to 212 μW cm−2. Under 530 nm light illumination, the maximum responsivity and external quantum efficiency are 139.9 A W−1 and 32 730%, respectively. These results indicate that GeS nanoribbon is a promising semiconducting nanomaterial for high performance broadband visible-light sensing applications.

Graphical abstract: Synthesis of single-crystalline GeS nanoribbons for high sensitivity visible-light photodetectors

Supplementary files

Article information

Article type
Paper
Submitted
20 May 2015
Accepted
28 Jun 2015
First published
01 Jul 2015

J. Mater. Chem. C, 2015,3, 8074-8079

Author version available

Synthesis of single-crystalline GeS nanoribbons for high sensitivity visible-light photodetectors

C. Lan, C. Li, Y. Yin, H. Guo and S. Wang, J. Mater. Chem. C, 2015, 3, 8074 DOI: 10.1039/C5TC01435B

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