Please use this identifier to cite or link to this item: https://hdl.handle.net/1959.11/55014
Title: Transition-metal decorated graphdiyne monolayer as an efficient sensor toward phosphide (PH3) and arsine (AsH3)
Contributor(s): Singsen, S (author); Thasami, N (author); Tangpakonsab, P (author); Bae, H (author); Lee, H (author); Hussain, T  (author)orcid ; Kaewmaraya, T (author)
Publication Date: 2022-10-12
DOI: 10.1039/D2CP02659G
Handle Link: https://hdl.handle.net/1959.11/55014
Abstract: 

Graphdiyne (GDY), a two-dimensional (2D) carbon, uniquely possesses mixed sp–sp2 hybridization, uniform nano-sized porous structure, semiconducting character, and excellent electrical conductivity. These features beneficially promote its applications in many fields, especially gas sensing. Based on density functional theory (DFT) and statistical thermodynamics, this study reports the sensing capabilities of pristine and selected transition metal (i.e., Fe, Sc, and Ti)-decorated GDY to detect environmentally hazardous arsine (AsH3) and phosphide (PH3) gases. We discover that Fe-doped GDY is a high-performance sensing material for detecting AsH3 and PH3 because of its selectivity and ultra-high sensitivity at the part-per-million (ppm) level. The presence of these gases induces measurably drastic changes in the electronic properties of Fe-doped GDY. The promising detection capabilities are fundamentally rooted in the appropriate chemical binding energies (i.e., ranging from -0.80 to -1.80 eV), which are basically rooted in the prominent orbital overlap among Fe-3d and As(P)-4p states. This study has raised the need to design efficient nanosensors using GDY-based materials.

Publication Type: Journal Article
Source of Publication: Physical Chemistry Chemical Physics, 24(43), p. 26622-26630
Publisher: Royal Society of Chemistry
Place of Publication: United Kingdom
ISSN: 1463-9084
1463-9076
Fields of Research (FoR) 2020: 340799 Theoretical and computational chemistry not elsewhere classified
Socio-Economic Objective (SEO) 2020: 180199 Air quality, atmosphere and weather not elsewhere classified
Peer Reviewed: Yes
HERDC Category Description: C1 Refereed Article in a Scholarly Journal
Appears in Collections:Journal Article
School of Science and Technology

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