A 3D chemically modified graphene hydrogel for fast, highly sensitive, and selective gas sensor

Jin Wu, Kai Tao, Yuan Yuan Guo, Zhong Li, Xiao Tian Wang, Zhong Zhen Luo, Shuang Long Feng, Chun Lei Du, Di Chen, Jian Min Miao, Leslie K. Norford

Research output: Contribution to journalArticlepeer-review

160 Scopus citations

Abstract

Reduced graphene oxide (RGO) has proved to be a promising candidate in high-performance gas sensing in ambient conditions. However, trace detection of different kinds of gases with simultaneously high sensitivity and selectivity is challenging. Here, a chemiresistor-type sensor based on 3D sulfonated RGO hydrogel (S-RGOH) is reported, which can detect a variety of important gases with high sensitivity, boosted selectivity, fast response, and good reversibility. The NaHSO3 functionalized RGOH displays remarkable 118.6 and 58.9 times higher responses to NO2 and NH3, respectively, compared with its unmodified RGOH counterpart. In addition, the S-RGOH sensor is highly responsive to volatile organic compounds. More importantly, the characteristic patterns on the linearly fitted response-temperature curves are employed to distinguish various gases for the first time. The temperature of the sensor is elevated rapidly by an imbedded microheater with little power consumption. The 3D S-RGOH is characterized and the sensing mechanisms are proposed. This work gains new insights into boosting the sensitivity of detecting various gases by combining chemical modification and 3D structural engineering of RGO, and improving the selectivity of gas sensing by employing temperature dependent response characteristics of RGO for different gases.

Original languageEnglish
Article number1600319
JournalAdvanced Science
Volume4
Issue number3
DOIs
StatePublished - 1 Mar 2017
Externally publishedYes

Fingerprint

Dive into the research topics of 'A 3D chemically modified graphene hydrogel for fast, highly sensitive, and selective gas sensor'. Together they form a unique fingerprint.

Cite this