Rh-doped MoTe2 Monolayer as a Promising Candidate for Sensing and Scavenging SF6 Decomposed Species: a DFT Study

Author:

Zhu Hongliang,Cui HaoORCID,He Dan,Cui Ziwen,Wang Xiang

Abstract

AbstractIn this work, the adsorption and sensing behaviors of Rh-doped MoTe2 (Rh-MoTe2) monolayer upon SO2, SOF2, and SO2F2 are investigated using first-principles theory, wherein the Rh doping behavior on the pure MoTe2 surface is included as well. Results indicate that TMo is the preferred Rh doping site with Eb of − 2.69 eV, and on the Rh-MoTe2 surface, SO2 and SO2F2 are identified as chemisorption with Ead of − 2.12 and − 1.65 eV, respectively, while SOF2 is physically adsorbed with Ead of − 0.46 eV. The DOS analysis verifies the adsorption performance and illustrates the electronic behavior of Rh doping on gas adsorption. Band structure and frontier molecular orbital analysis provide the basic sensing mechanism of Rh-MoTe2 monolayer as a resistance-type sensor. The recovery behavior supports the potential of Rh-doped surface as a reusable SO2 sensor and suggests its exploration as a gas scavenger for removal of SO2F2 in SF6 insulation devices. The dielectric function manifests that Rh-MoTe2 monolayer is a promising optical sensor for selective detection of three gases. This work is beneficial to explore Rh-MoTe2 monolayer as a sensing material or a gas adsorbent to guarantee the safe operation of SF6 insulation devices in an easy and high-efficiency manner.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Springer Science and Business Media LLC

Subject

Condensed Matter Physics,General Materials Science

Reference46 articles.

1. Chen D, Zhang X, Tang J, Li Y, Cui Z, Zhou Q (2019) Using single-layer HfS2 as prospective sensing device toward typical partial discharge gas in SF6-based gas-insulated switchgear. IEEE Transactions on Electron Devices 66:689–695

2. Z. Xiaoxing, Y. Lei, W. Xiaoqing, H. Weihua, Experimental sensing and density functional theory study of H2S and SO2 adsorption on Au-modified graphene, Advanced Science, (2015).

3. Wang X, Zhi C, Li L, Zeng H, Li C, Mitome M, Golberg D, Bando Y (2011) “Chemical blowing” of thin-walled bubbles: high-throughput fabrication of large-area. Few-Layered BN and Cx-BN Nanosheets, Advanced Materials 23:4072–4076

4. Cui H, Chen D, Zhang Y, Zhang X (2019) Dissolved gas analysis in transformer oil using Pd catalyst decorated MoSe2 monolayer: a first-principles theory. Sustain Mater Technol 20:e00094

5. Cui H, Zhang X, Zhang G, Tang J (2019) Pd-doped MoS2 monolayer: a promising candidate for DGA in transformer oil based on DFT method. Appl Surf Sci 470:1035–1042

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