One dimensional ternary Cu-Bi-S based semiconductor nanowires: Synthesis, optical and electrical properties

Jing Li, Haizheng Zhong, Huijuan Liu, Tianyou Zhai*, Xi Wang, Meiyong Liao, Yoshio Bando, Ruibin Liu, Bingsuo Zou

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

31 Citations (Scopus)

Abstract

Ternary Cu-Bi-S based compounds have been thought to be alternative materials for well-known CuInS 2 because of their abundance. Cu-Bi-S based nanomaterials have been less studied. We here report the synthesis, optical and electrical properties of single crystal Cu 4Bi 4S 9 nanowires. High-quality Cu 4Bi 4S 9 nanowires were synthesized through a modified solvothermal route by controlling the reaction sources and temperature. The optical bandgap for Cu 4Bi 4S 9 nanowires were determined by using UV-vis-NIR and cyclic voltammetry techniques. Single nanowire devices were fabricated by using lithographic techniques. The devices exhibit photoconductive response with high external quantum efficiency (2.9 × 10 8%). Temperature-dependent electrical transport properties were also investigated. We observed that the transport properties of Cu 4Bi 4S 9 nanowire show typical semiconductor behaviour in the temperature region 10-140 K and metal-like character in the temperature region of 150-300 K. The carrier transport in Cu 4Bi 4S 9 nanowires can be described by the small polaron model in temperature region of 60-140 K and the variable range hopping mechanism in temperature region of 10-50 K. We further studied the properties of Cu 4Bi 4S 9 nanowires in field-emission devices. The devices exhibit a relatively low turn-on field (6.9 V μm -1). The potential applications of Cu 4Bi 4S 9 nanowires as field emitting materials and light absorbers in detectors are indicated.

Original languageEnglish
Pages (from-to)17813-17819
Number of pages7
JournalJournal of Materials Chemistry
Volume22
Issue number34
DOIs
Publication statusPublished - 14 Sept 2012

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