Defect-Engineered 3D Nanostructured MoS2 for Detection of Ammonia Gas at Room Temperature

被引:12
作者
Rajbhar, Manoj Kumar [1 ]
De, Sandip [1 ]
Sanyal, Gopal [2 ]
Kumar, Avijit [1 ]
Chakraborty, Brahmananda [3 ,4 ]
Chatterjee, Shyamal [1 ]
机构
[1] Indian Inst Technol Bhubaneswar, Sch Basic Sci, Jatni 752050, Odisha, India
[2] Bhabha Atom Res Ctr, Mech Met Div, Mumbai 400085, India
[3] Bhabha Atom Res Ctr, High pressure & Synchrotron Radiat Phys Div, Mumbai 400085, India
[4] Homi Bhabha Natl Inst, Mumbai 400085, India
关键词
3D nanostructured MoS 2; ion beam irradiation; NH 3 gas sensing; defect engineering; wettability; conductivity; SENSING PROPERTIES; SENSOR; NANOSHEETS; EVOLUTION; NANOPARTICLES; ALPHA-MOO3; NH3;
D O I
10.1021/acsanm.2c05361
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Recent studies on nanostructured MoS2 show promising performance in the detection of reducing gases like ammonia (NH3). However, this material in the pristine form possesses limitations in terms of response, recovery, and repeatability over a long duration of time. Several attempts have been made to overcome these shortcomings by modifying it chemically to make a hybrid form or direct doping with other atoms. In this work, we demonstrate that suitable defect engineering of 3D nanostructured MoS2 induced by a low energy ion beam can lead to a significantly improved performance of sensing NH3 compared to the as-prepared one. Significant decreases in response and recovery times have been demonstrated at room temperature for the modified MoS2 compared to its pristine form, which shows its best response only at a higher temperature of about 200 degrees C. A 3D nanoflower-like structure of MoS2 was synthesized hydrothermally, which was coated on substrates, and then irradiated with 5 keV argon ions at different doses. While the ion beam-induced morphological modifications are observed via electron microscopic study, the surface defects are apparent in X-ray diffraction, Raman scattering, and X-ray spectroscopic studies. The ion beam-modified MoS2 shows a higher electrical conductivity and water-repelling nature compared to the pristine one, which are complementary properties for better sensing performance. While Monte Carlo-based 3D ion-solid interaction simulation was used to support the morphological modifications and defect developments after ion irradiation, the sensing mechanism and change in conductivity were successfully explained using density functional theory-based simulations.
引用
收藏
页码:5284 / 5297
页数:14
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