Tin Diselenide (SnSe2) Van der Waals Semiconductor: Surface Chemical Reactivity, Ambient Stability, Chemical and Optical Sensors

被引:24
作者
D'Olimpio, Gianluca [1 ]
Farias, Daniel [2 ,3 ,4 ]
Kuo, Chia-Nung [5 ,6 ]
Ottaviano, Luca [1 ,7 ]
Lue, Chin Shan [5 ,6 ]
Boukhvalov, Danil W. [8 ,9 ]
Politano, Antonio [1 ,10 ]
机构
[1] Univ Aquila, Dept Phys & Chem Sci, Via Vetoio, I-67100 Laquila, Italy
[2] Univ Autonoma Madrid, Dept Fis Mat Condensada, Madrid 28049, Spain
[3] Univ Autonoma Madrid, Inst Nicolas Cabrera, Madrid 28049, Spain
[4] Condensed Matter Phys Ctr IFIMAC, Madrid 28049, Spain
[5] Natl Cheng Kung Univ, Dept Phys, 1 Ta Hsueh Rd, Tainan 70101, Taiwan
[6] Minist Sci & Technol, Taiwan Consortium Emergent Crystalline Mat, Taipei 10601, Taiwan
[7] CNR SPIN UoS LAquila, Via Vetoio, I-67100 Laquila, Italy
[8] Nanjing Forestry Univ, Inst Mat Phys & Chem, Coll Sci, Nanjing 210037, Peoples R China
[9] Ural Fed Univ, Theoret Phys & Appl Math Dept, Mira St 19, Ekaterinburg 620002, Russia
[10] CNR, IMM Ist Microelettron & Microsistemi, 8 Str 5, I-95121 Catania, Italy
关键词
van der Waals semiconductors; gas sensing; tin diselenide; density functional theory; LIQUID-PHASE EXFOLIATION; GAS-SENSING PROPERTIES; HYDROGEN EVOLUTION; GRAPHENE MATERIALS; OXIDE; SNO2; HETEROSTRUCTURE; NANOPARTICLES; TRANSPORT; AMMONIA;
D O I
10.3390/ma15031154
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Tin diselenide (SnSe2) is a layered semiconductor with broad application capabilities in the fields of energy storage, photocatalysis, and photodetection. Here, we correlate the physicochemical properties of this van der Waals semiconductor to sensing applications for detecting chemical species (chemosensors) and millimeter waves (terahertz photodetectors) by combining experiments of high-resolution electron energy loss spectroscopy and X-ray photoelectron spectroscopy with density functional theory. The response of the pristine, defective, and oxidized SnSe2 surface towards H-2, H2O, H2S, NH3, and NO2 analytes was investigated. Furthermore, the effects of the thickness were assessed for monolayer, bilayer, and bulk samples of SnSe2. The formation of a sub-nanometric SnO2 skin over the SnSe2 surface (self-assembled SnO2/SnSe2 heterostructure) corresponds to a strong adsorption of all analytes. The formation of non-covalent bonds between SnO2 and analytes corresponds to an increase of the magnitude of the transferred charge. The theoretical model nicely fits experimental data on gas response to analytes, validating the SnO2/SnSe2 heterostructure as a suitable playground for sensing of noxious gases, with sensitivities of 0.43, 2.13, 0.11, 1.06 [ppm](-1) for H-2, H2S, NH3, and NO2, respectively. The corresponding limit of detection is 5 ppm, 10 ppb, 250 ppb, and 400 ppb for H-2, H2S, NH3, and NO2, respectively. Furthermore, SnSe2-based sensors are also suitable for fast large-area imaging applications at room temperature for millimeter waves in the THz range.
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页数:19
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