Acta Phys. -Chim. Sin. ›› 2025, Vol. 41 ›› Issue (12): 100185.doi: 10.1016/j.actphy.2025.100185
• REVIEW • Previous Articles Next Articles
Jingjing Liu*(
), Aoqi Wei, Hao Zhang, Shuwang Duo*(
)
Received:2025-08-10
Revised:2025-09-06
Accepted:2025-09-08
Published:2025-10-23
Contact:
Email: liujingjing1125@163.com (Jingjing Liu)dsw@jxstnu.edu.cn (Shuwang Duo)
Supported by:Jingjing Liu, Aoqi Wei, Hao Zhang, Shuwang Duo. SnS2-based heterostructures: advances in photocatalytic and gas-sensing applications[J]. Acta Phys. -Chim. Sin. 2025, 41(12), 100185. doi: 10.1016/j.actphy.2025.100185
Fig 3
TEM images of (a) SnS2, (b) SnO2-SnS2-0.5, (c) SnO2-SnS2-1, (d) SnO2-SnS2-2, (e) SnO2-SnS2-4, and (f) SnO2; (g) schematic diagram of the morphology evolution; (h) HAADF STEM image of SnO2-SnS2-1, (i) STEM-EDX concentration line spectrum of Sn, S, and O; (j) EELS overlaid image of Sn, S, and O; (k–m) EELS images of each element for S, O, and Sn, respectively. Reprinted with permission from Ref. [34], Copyright 2015, American Chemical Society."
Fig 4
(a) H2 evolution rates of 2D-2D SnS2/CdS heterostructures with varying amounts of SnS2 NSs; (b) the hydrogen production of SnS2/CdS-35 with different sacrificial agents; (c) cycling tests of SnS2/CdS-35 under visible light of λ ≥ 420 nm; (d) UV-vis light absorption and the corresponding wavelength-dependent AQE of SnS2/CdS-35. Reprinted with permission from Ref. [42], Copyright 2023, Royal Society of Chemistry."
Fig 5
(a) Time-dependent H2 productivity and (b) H2 evolution rate of ZIS and ZIS/SnS2 composites. Reprinted with permission from Ref. [44], Copyright 2023, Elsevier. (c) Three kinds of core-shell nanofibers; (d) photocatalytic H2 evolution performances, (e) average rate of H2 evolution, and (f) wavelength dependence of the apparent quantum yield for the TiO2-based heterostructures. Reprinted with permission from Ref. [45], Copyright 2024, Royal Society of Chemistry."
Fig 8
Time-dependent H2O2 production by the synthesized samples in: (a) pure water (pH = 7), (b) acidic solution (pH = 3), and (c) 10% IPA solution (pH = 3); (d) effects of dissolved oxygen and sacrificial agents on H2O2 generation for SCN/VS-SnS2. Reprinted with permission from Ref. [60], Copyright 2025, Elsevier."
Table 1
Summary of photocatalytic applications based on SnS2 heterojunction materials."
| Photocatalysts | Applications | Light conditions | Activity | Ref. |
| SnS2/g-C3N4 | H2 evolution/Environmental purification for 2, 4-dichlorophenol and Cr(Ⅵ) | 300 W Xe lamp, λ > 420 nm | 1389 μmol g−1 h−1/85% of Cr(Ⅵ) and 94% of 2, 4-DCP | [ |
| Bi2S3/SnS2/Bi2W2O9 | H2 evolution/Environmental purification for methyl parathion | 300 W Xe lamp, λ > 420 nm | 0.92 mmol g−1 h−1/kapp = 0.013 min−1 | [ |
| ZnIn2S4/SnS2 | H2 evolution | 300 W Xe lamp, λ ≥ 420 nm | 1.13 mmol g−1 h−1 | [ |
| SnS2/g-C3N4 | H2 evolution | 300 W Xe lamp, λ > 420 nm | 1818.75 μmol g−1 h−1 | [ |
| SnS2/twinned Mn0.5Cd0.5S | H2 evolution | 300 W Xe lamp | 182.82 mmol g−1 h−1 | [ |
| SnS2/CdS | H2 evolution | 300 W Xe lamp, λ ≥ 420 nm | 5.18 mmol g−1 h−1 | [ |
| TiO2-SnS/SnS2 | H2 evolution | 300 W Xe lamp, λ > 420 nm | 337μmol g−1 h−1 | [ |
| CdS/SnS2 | H2 evolution | 100 mW cm−2 Xe lamp | 360.75 μL h−1 | [ |
| SnO2/SnS2 | Environmental purification for Cr(Ⅵ) and methyl orange | 500 W Xe lamp, λ > 420 nm | 98.4% for 40 min and 99.1% for 70 min | [ |
| BiOCl/BiOBr/SnS2 | Environmental purification for Rhodamine B | 210 W Xe lamp | 95.8% for 20 min | [ |
| SnS2 /Sn3O4 | Environmental purification for methyl orange and Cr(Ⅵ) | 250 W Xe lamp | 98.16% for 24 min and 96.22% for 105 min | [ |
| Ni doped SnS2/BiOBr | Environmental purification for tetracycline hydrochloride | 500 W Xe lamp | kapp = 0.0488 min-1 | [ |
| SnS2/g-C3N4 | Environmental purification for Rhodamine B (RhB) | 220 W Xe lamp | 92.22% for 6h | [ |
| SnS2/TiO2 | Environmental purification for tetracycline hydrochloride | 300 W Xe lamp | 93.4% for 90 min | [ |
| CPVA/SnS2 | Environmental purification for Cr(Ⅵ) | 200 W Xe lamp | kapp = 0.034 min−1 | [ |
| SnS2/COF | H2O2 production | 300 W Xe lamp, λ > 420 nm | 1468 μmol g−1 h−1 | [ |
| SCN/VS-SnS2 | H2O2 production | 300 W Xe lamp, λ > 420 nm | 232.4 μmol g−1 h−1 | [ |
| SnS2/SnO2 | CO2 reduction to CO | 300 W Xe lamp | 60.85 μmol g−1 h−1 | [ |
| SnS2/Au/g-C3N4 | CO2 reduction to CO | 300 W Xe lamp | 93.81 μmol g−1 h−1 | [ |
Fig 13
(a) Schematic of SnS2 nanoflower oxidation evolution; (b) NO2 response (3 ppm) at 60/100 ℃ for samples with varying oxidation times; (c) response-concentration linear fitting; (d) repeatability of SnO2/SnS2 (30-min oxidation) toward 3 ppm NO2. Reprinted with permission from Ref. [75], Copyright 2022, Elsevier."
Fig 14
(a) Dynamic response of SnS2/TiO2-2 to 1 ppm NO2 under varying light intensities; (b) response-concentration correlation. Reprinted with permission from Ref. [77], Copyright 2021, American Chemical Society. (c, d) Resistance changes of sensors in dark/light conditions; (e) light-modulated resistance-concentration dependence. Reprinted with permission from Ref. [78], Copyright 2022, Royal Society of Chemistry."
Fig 15
(a) A sketch of the anion exchange reaction for SnS2/SnSe2 heterostructures with in situ construction method; (b) response curves of as-obtained samples to 0.5–4 ppm NO2 at room temperature; (c) response/recovery times of SnS2/SnSe2-2 sensor at different concentration of NO2. Reprinted with permission from Ref. [16], Copyright 2022, Royal Society of Chemistry."
Table 2
Summary of NO2 gas sensors based on SnS2 heterojunction materials."
| Sensor | Conc. (ppm) | T (℃) | Res | τres / τrec | Ref. |
| g-C3N4/SnS2 | 1 | RT | 503% (∆R/Ra × 100%) | 166// | [ |
| In2O3/SnS2 | 50 | RT | 15 (Rg/Ra) | 45/147 | [ |
| SnS2/SnSe2 | 4 | RT | 1165.2% (∆R/Ra × 100%) | 80/78 | [ |
| Bi2S3/SnS2 | 0.5 | RT | 14 (Rg/Ra) | 38/80 | [ |
| SnS2/TiO2 | 50 | RT | 245.4% (∆R/Ra × 100%) | 194/558 | [ |
| Ag2S/SnS2 | 1 | RT | 286% (∆R/Ra × 100%) | 17/38 | [ |
| YSZ@SnS2/Ag2S | 1 | RT | 3.27 (Rg/Ra) | 12/27 | [ |
| SnS2/aEG | 100 | RT | 21.19 (Rg/Ra) | 0.53/51.7 | [ |
| WO3/SnS2 | 20 | 210 | 63.8 (Rg/Ra) | 36/95 | [ |
| In2O3/SnS2 | 0.5 | 70 | 67.4 (Rg/Ra) | 5/129 | [ |
| SnS2/MoS2 | 100 | RT | 25.9 (Rg/Ra) | 2/28.2 | [ |
| SnO2/SnS2 | 8 | 80 | 5.3 (Rg/Ra) | 159/297 | [ |
| ZnS/SnS2 | 10 | RT | 160 (Rg/Ra) | 20/29.2 | [ |
| SnS2/Ti3C2Tx | 10 | RT | 5.83% (∆R/Ra × 100%) | 432/507 | [ |
| SnO2-rGO/SnS2 | 10 | 120 | 1064 (Rg/Ra) | 42/111 | [ |
| SnS2/S-rGO | 0.125 | RT | 17% (∆R/Ra × 100%) | // | [ |
| rGO/SnS2 | 5 | 150 | 32 (Rg/Ra) | 50/48 | [ |
| SnS2/TiO2 | 5 | RT | 526% (∆R/Ra × 100%) | 43/102 | [ |
| SnS2-rGO | 11.9 | 80 | 9.8% (∆R/Ra × 100%) | // | [ |
| TeO2/SnS2 | 10 | 50 | 1.018 (Rg/Ra) | // | [ |
| SnS2/SiO2 | 10 | RT | 701% (∆R/Ra × 100%) | 272/3800 | [ |
| SnS2/graphene | 0.125 | RT | 860% (∆R/Ra × 100%) | 114/166 | [ |
| SnS2/MXene derived TiO2 hybrid | 1000 | RT | 125 (Rg/Ra) | 10/64 | [ |
| SnS2/rGO | 1 | RT | 650% (∆R/Ra × 100%) | 75// | [ |
| SnS2/MWCNT | 0.025 | RT | 5% (∆R/Ra × 100%) | // | [ |
| SnO2@SnS2 | 0.2 | RT | 5.3 (Rg/Ra) | 950/1160 | [ |
| SnS2/Ti3C2 MXene | 10 | RT | 23.6 (Rg/Ra) | 92/312 | [ |
Fig 18
(a) SEM image of α-MoO3@SnS2; (b) dynamic response curves of MoO3, MS2, MS6 and MS10 sensors (the second hydrothermal time was 2, 6, 10 hours, respectively) for different concentration TEA; (c) response and recovery characteristics of the pure α-MoO3, MS2, MS6 and MS10 sensors for 100 ppm TEA; (d) the long-term stability of the MS6 sensor. Reprinted with permission from Ref. [103], Copyright 2021, Elsevier."
Table 3
Summary of NH3 and TEA sensors based on SnS2 heterojunction materials."
| Sensor (target gas) | Conc. (ppm) | T (℃) | Res | τres / τrec | Ref. |
| SnO2/SnS2 (NH3) | 100 | RT | 11.1 (Ra/Rg) | 5/876 | [ |
| SnO2-SnS2 (NH3) | 100 | RT | 1.83 (Ra/Rg) | // | [ |
| SnS2/SnO2 (NH3) | 100 | 80 | 5.91 (Ra/Rg) | 42/206 | [ |
| SnS2/SnO2-x (NH3) | 50 | 130 | 3.3 (Ra/Rg) | // | [ |
| SnO2/SnS2 (NH3) | 100 | RT | 12.6 (Ra/Rg) | 294/375 | [ |
| SnS2/S-rGO (NH3) | 1 | RT | 11% (∆R/Ra × 100%) | // | [ |
| MXene/SnS2 (NH3) | 10 | RT | 42.9% (∆R/Ra × 100%) | 161/80 | [ |
| SnS2-xSex (NH3) | 100 | RT | 0.6 (Ra/Rg) | // | [ |
| Pr-SnS2/ZnS (NH3) | 50 | 160 | 14.03 (Ra/Rg) | 6/13 | [ |
| SnS2/graphene (NH3) | 100 | RT | 17.83% (∆R/Ra × 100%) | 31/435 | [ |
| MoS2/SnS2 (NH3) | 0.5 | RT | 330 (Ra/Rg) | 0.8/1 | [ |
| MOF@SnS2 (NH3) | 5 | RT | 10% (∆R/Ra × 100%) | // | [ |
| SnO2/SnS2 (NH3) | 100 | RT | 2.48 (Ra/Rg) | 21/110 | [ |
| α-MoO3@SnS2 (TEA) | 100 | 175 | 114.9 (Ra/Rg) | 51// | [ |
| Sm-doped SnS2/ZnS (TEA) | 100 | RT | 5.23 (Ra/Rg) | 8/52 | [ |
| SnS2/SnO2 (TEA) | 100 | 160 | 76 (Ra/Rg) | 84/101 | [ |
| SnS2/ZnS (TEA) | 50 | 180 | 11.21 (Ra/Rg) | 2/8 | [ |
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