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Improved Performance of g-C 3 N 4 for Optoelectronic Detection of NO 2 Gas by Coupling Metal-Organic Framework Nanosheets with Coordinatively Unsaturated Ni(II) Sites.

ACS applied materials & interfaces(2023)

Cited 5|Views17
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Abstract
Sensitive and selective optoelectronic detection of NO with g-CN (CN) is critical, but it remains challenging to achieve ultralow concentration (ppb-level) detection. Herein, Ni metal-organic frameworks/CN nanosheet heterojunctions were successfully fabricated by the electrostatic induced assembly strategy and then treated by a post-alkali etching process for creating coordinatively unsaturated Ni(II) sites. The optimized heterojunction exhibits a record detection limitation of 1 ppb for NO, well below that observed on pristine CN, and an outstanding selectivity over other gases, along with long-time stability (120 days) at room temperature. The resulting superior detection performance benefits from the enhanced charge transfer and separation of the closely contacted heterojunction interface and the favorable adsorption of NO by unsaturated Ni(II) as selective adsorption sites mainly by means of the time-resolved photoluminescence spectra and X-ray photoelectron spectra. Moreover, the Fourier transform infrared spectra and temperature-programmed desorption disclose that the promotion adsorption of NO depends on the strengthened interaction between NO and Ni(II) node sites at the aid of OH groups from unsaturated coordination. This work offers a versatile solution to develop promising CN-based optoelectronic sensors at room temperature.
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Key words
CN nanosheet,MOF coupling,optoelectronic NO2 sensing,photogenerated electron transfer,unsaturated Ni(II) sites
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