J. Mater. Sci. Technol. ›› 2022, Vol. 101: 242-263.DOI: 10.1016/j.jmst.2021.05.068
• Invited Review • Previous Articles Next Articles
Shuo Lia, Jinyan Xiongb,*(
), Xueteng Zhua, Weijie Lid,*(
), Rong Chena,e, Gang Chenga,c,**(
)
Received:2021-04-16
Revised:2021-05-22
Accepted:2021-05-24
Published:2022-02-28
Online:2021-08-08
Contact:
Jinyan Xiong,Weijie Li,Gang Cheng
About author:**School of Chemistry and Environmental Engineering, Wuhan Institute of Technology, Donghu New & High Technology Development Zone, Wuhan 430205, China. gcheng@wit.edu.cn (G. Cheng).Shuo Li, Jinyan Xiong, Xueteng Zhu, Weijie Li, Rong Chen, Gang Cheng. Recent advances in synthesis strategies and solar-to-hydrogen evolution of 1T phase MS2 (M = W, Mo) co-catalysts[J]. J. Mater. Sci. Technol., 2022, 101: 242-263.
Fig. 1. (a) Photocatalytic hydrogen evolution upon a particulate photocatalyst; (b) Functions of co-catalysts in photocatalysis; (c) Photocatalytic hydrogen evolution upon a particulate photocatalyst with a co-catalyst.
Fig. 2. Schematic diagram of natural MS2 (M = Mo, W): (a) side view; (b) top view; (c) Transition mechanism from 2H phase to 1T-MoS2 (Reproduced with permission [102]. Copyright 2018, American Chemical Society.).
Fig. 3. Overview of photocatalytic hydrogen evolution promoted by 1T-MS2 (M = W, Mo) co-catalyst. (A) Venkateshwaran and Senthil Kumar [107] Copyright 2015, American Chemical Society; (B) Gao et al. [13] Copyright 2020, Elsevier; (C) Li et al. [108] Copyright 2019, Royal Society of Chemistry; (D) Xu et al. [109] Copyright 2019, Elsevier; (E) Lian et al. [110] Copyright 2019, Elsevier; (F) Liang et al. [111] Copyright 2019, Royal Society of Chemistry; (G) Mao et al. [112] Copyright 2019, Royal Society of Chemistry; (H) Sun et al. [113] Copyright 2020, Royal Society of Chemistry; (I) Liang et al. [114] Copyright 2020, Elsevier; (J) Liang et al. [115] Copyright 2019, Royal Society of Chemistry; (K) Qi et al. [116] Copyright 2017, American Chemical Society.
| Method | 1T phase content | Advantages | Disadvantages |
|---|---|---|---|
| Alkali metal intercalation | 70-90% | Commonly used | Dangerous, and the size is not uniform |
| Electrochemical intercalation | 90-97% | Quick and controllable experimental parameters | Low output and complex equipment |
| Auxiliary exfoliation method | 70-90% | Simple operation and environmentally friendly | High pressure or some difficult requirements |
| Introduction of sulfur vacancies | 15-50% | Simple operation | Low phase purity |
| Electron donor induction | Adjustable | Experimental parameters can be tailored and detected in situ | Can only be used for single layers |
| Chemical vapor deposition | 100% | High crystallinity | Cannot grow on the substrate |
| Template method | 60%+ | Morphology-controlled | Complex operation and low yield |
| Hydrothermal/solvothermal method | 25-100% | Quick, safe, and can be grown directly on the substrate | Poor crystallinity |
| Calcination method | 100% | Simple operation | Easy to sublime at high temperature |
Table 1 Comparison of different synthesis methods.
| Method | 1T phase content | Advantages | Disadvantages |
|---|---|---|---|
| Alkali metal intercalation | 70-90% | Commonly used | Dangerous, and the size is not uniform |
| Electrochemical intercalation | 90-97% | Quick and controllable experimental parameters | Low output and complex equipment |
| Auxiliary exfoliation method | 70-90% | Simple operation and environmentally friendly | High pressure or some difficult requirements |
| Introduction of sulfur vacancies | 15-50% | Simple operation | Low phase purity |
| Electron donor induction | Adjustable | Experimental parameters can be tailored and detected in situ | Can only be used for single layers |
| Chemical vapor deposition | 100% | High crystallinity | Cannot grow on the substrate |
| Template method | 60%+ | Morphology-controlled | Complex operation and low yield |
| Hydrothermal/solvothermal method | 25-100% | Quick, safe, and can be grown directly on the substrate | Poor crystallinity |
| Calcination method | 100% | Simple operation | Easy to sublime at high temperature |
Fig. 4. (a) Multilayer lithium ion intercalation-exfoliation method (Reproduced with permission [109]. Copyright 2019, Elsevier.); (b) Electrochemical intercalation (Reproduced with permission [126]. Copyright 2015, American Chemical Society.); (c) Supercritical CO2 assisted exfoliation method (Reproduced with permission [116]. Copyright 2016, American Chemical Society.).
Fig. 5. (a) Synthesis of flower-like 1T-MoS2 from SBA-15 template (Reproduced with permission [107]. Copyright 2015, American Chemical Society.); (b) Synthesis of 1T/2H mixed phase MoS2 from ZIF template (Reproduced with permission [13]. Copyright 2020, Elsevier.).
Fig. 6. (a) Schematic illustration of 1T-WS2 prepared by the hydrothermal method (Reproduced with permission [136]. Copyright 2018, Elsevier.); (b) Schematic illustration of the synthesis of sea urchin-like 1T-WS2/SWCNTs (Reproduced with permission [119]. Copyright 2020, Elsevier.)
Fig. 7. (a) Schematic illustration of the synthesis of 1T WS2 by the PE-CVD method (Reproduced with permission [137]. Copyright 2020, Small.); (b) Schematic illustration of the synthesis, and (c) scanning electron microscope (SEM) image of butterfly WS2 (Reproduced with permission [138]. Copyright 2018, American Chemical Society.).
Fig. 8. (a) Ultrasound-assisted synthesis of 1T-MoS2/C3N4 complex (Reproduced with permission [111]. Copyright 2019, Royal Society of Chemistry, London); (b) Synthesis of 1T-MoS2/g-C3N4 binary composite by ultrasonication assisted methods (Reproduced with permission [115]. Copyright 2019, Royal Society of Chemistry, London); (c) Synthesis of 1T-MoS2/ZnCoS composite by "boiled in one-pot" method (Reproduced with permission [112]. Copyright 2019, London); (d) Synthesis of 1T-MoS2/O-g-C3N4 heterostructures by the in-situ growth method (Reproduced with permission [141]. Copyright 2018, Elsevier.).
| Photocatalyst | Synthetic method for 1T-MS2 (M=W or Mo) | Dosage of photocatalyst | H2 evolution (mmol·g-1·h-1) | Irradiation source | Sacrificial reagent. | content of 1T-MS2 (M=W, Mo) | Reference |
|---|---|---|---|---|---|---|---|
| Ti3C2/TiO2/1T-MoS2 | Hydrothermal method | 10 mg/100 mL | 9.738 | 300 W Xe lamp | 15 mL Acetone + 5 mL TEOA +80 mL DI | 84.00% | [ |
| 1T-MoS2@C3N4 | Sonication-assisted hydrothermal method | 20 mg/100 mL | 0.565 | 300 W Xe lamp | 20 vol% TEOA | 79.00% | [ |
| 1T-MoS2/O-g-C3N4 | In-situ growth method | 10 mg/100 mL | 1.84172 | 300 W Xe lamp | 10 vol% TEOA | >70% | [ |
| CdSe/ZnS/1T-MoS2 | Lithium-ion intercalation exfoliation | 2.5 mg/5 mL | 155 | 300 W Xe lamp | 25 vol% Et3N | _ | [ |
| TiO2/1T-MoS2 | Self-assembly method | 15 mg/20 mL | 2 | 300 W Xe lamp | 25 vol% methanol | 57.00% | [ |
| TiO2/1T-WS2 | Colloidal synthesismethod | 200 mg/L | 2.57 | 300 W Xe lamp | DI: methanol = 3:1 | 100.00% | [ |
| O-1T-MoS2/CdS | Hydrothermal method | 2 mg/20 mL | 132.4 | 500 W metal halide lamp | 10% (v/v) HL: H2O | 87.00% | [ |
| ZnS@CdS@Cd0.5Zn0.5S-MoS2 | Solvothermal method | 10 mg/100 mL | 50.65 | 300 W Xe lamp | 10% (v/v) HL: H2O | - | [ |
| RGO/1T-MoS2 | One-step hydrothermal process | 0.1 g/30 mL | 71.2 | 250 W UV lamp | 30 mL ascorbic acid (3 × 10-2 M) and CoCl2·6H2O (2 × 10-4 M) | 100.00% | [ |
| 1T- PtS2/MCN | Cryo-mediated liquid phase exfoliation (LPE) | 50 mg/100 mL | 1.168 | 300 W Xe lamp | 10 vol% TEOA | - | [ |
| 1T-MoS2/Si-TiO2 | Hydrothermal method | 0.1 g/30 mL | 190 | 250 W UV lamp | 30 mL ascorbic acid (3 × 10-2 M) and CoCl2·6H2O (2 × 10-4 M) | - | [ |
| 1T-MoS2@g-C3N4 | Hydrothermal method | 50 mg/100 mL | 0.9487 | 300 W Xe lamp | HL | - | [ |
| MoS2/CdS | Solvothermal method | 10 mg/100 mL | 0.27258 | 300 W Xe lamp | 2.0 mL lactic acid alone or 0.010 mol glucose and 2.0 mL lactic acid | - | [ |
| CdS@1T-MoS2 | Solvothermal method | 20 mg/50 mL | 2.67 | 400 W Xe lamp | 15% (v/v) TEOA: H2O | - | [ |
| 1T-MoS2/TiO2(001) | Hydrothermal method | 25 mg/50 mL | 21.5 | Xe lamp, 73 mWcm-2 | 0.35 M Na2S and 0.25 M Na2SO3 | 79.50% | [ |
| WSe2-Zn0.1Cd0.9S | Colloidal method | 10 mg/40 mL | 147.32 | 500 W Xe lamp | 10%(v/v) HL: H2O | - | [ |
| MoS2/Zn0.5Co0.5S | Hydrothermal method | 30 mg/50 mL | 15.47 | 300 W Xe lamp | TEA, EY, acetonitrile | - | [ |
| 1T-MoS2@CdS | Hydrothermal method | 20 mg/100 mL | 17.479 | 300 W Xe lamp | 10%(v/v) HL: H2O | - | [ |
| CuS-1T -MoS2 | Hydrothermal method | 50 mg/50 mL | 9.6487 | 300 W Xe lamp | 0.3 M Na2SO3 | ∼70% | [ |
| 1T-MoS2/CdS | Lithium-ion intercalation exfoliation | 20 mg/100 mL | 0.79493 | 300 W Xe lamp | 10%(v/v) HL: H2O | - | [ |
| 1T-MoS2 QD@g-C3N4 | Ultrasonic mixing method | 20 mg/100 mL | 1.857 | 300 W Xe lamp | 20 vol% TEOA | ∼80% | [ |
| g-CN/1T-MoS2 | Li-intercalationexfoliation | 30 mg/100 mL | 5.62 | Xe lamp | 10 vol% TEOA | ∼68% | [ |
| 1T-MoS2-CdS | Ultrasonic mixing | 2 mg/20 mL | 131.7 | 500 W metal halide lamp | 10%(v/v) HL: H2O | >82% | [ |
| 1T-WS2@TiO2@Ti3C2 | Hydrothermal method | 10 mg/100 mL | 3.4098 | 300 W Xe lamp | 20 vol% TEOA | 73.00% | [ |
| 1TMoS2/MIL-125-NH2 | Hydrothermal method | 17 mg/17 mL | 1.454 | 300 W Xe lamp | MeCN: TEOA: H2O (79.0: 16.1: 4.9 v/v/v) | ∼75% | [ |
| CdS@1TMoS2 | Hydrothermal method | 50 mg/100 mL | 9.11 | 300 W Xe lamp | 10%(v/v) HL: H2O | 61.60% | [ |
| 1T'-MoS2@MoO3 | One-pot solvothermal method | 4 mg/100 mL | 22.108 | 300 W Xe lamp | 10 vol% TEOA | - | [ |
| TiO2@MoS2 | Hydrothermal intercalation/exfoliation | 20 mg/80 mL | 56 | 300 W Xe lamp | 20 vol% TEOA | 60.00% | [ |
| 1T-WS2/2D-C3N4 | Solvothermal process | 10 mg/100 mL | 0.33109 | 300 W Xe lamp | 10 vol% TEOA | 64.10% | [ |
| MoO3/1T-MoS2/g-C3N4 | In situ sulphuration | 10 mg/20 mL | 0.513 | 300 W Xe lamp | TEOA | - | [ |
| (Cl2) -(Bi12O17) -(MoS2) | Hydrothermal method | 10 mg/80 mL | 33 | 300 W Xe lamp | 0.3M HL | - | [ |
| 1T-WS2/g-C3N4 | Solvothermal process | 40 mg/100 mL | 1.021 | 300 W Xe lamp | 20 vol% TEOA | 65.30% | [ |
| MoS2@HCS (hollow carbon sphere) | Lithium intercalation method | 10 mg/100 mL | 7.2 | 300 W Xe lamp | 15 vol% TEOA pH8.5 | 47.00% | [ |
| 1T-MoS2/P25/NiOx | Lithium intercalation method | 100 mg/300 mL | 1.6291 | 300 W Xe lamp | 0.1 M methanol | ∼70% | [ |
Table 2 Photocatalytic performance of 1T-MS2 (M = W, Mo) co-catalyst-based photocatalysis system towards hydrogen evolution.
| Photocatalyst | Synthetic method for 1T-MS2 (M=W or Mo) | Dosage of photocatalyst | H2 evolution (mmol·g-1·h-1) | Irradiation source | Sacrificial reagent. | content of 1T-MS2 (M=W, Mo) | Reference |
|---|---|---|---|---|---|---|---|
| Ti3C2/TiO2/1T-MoS2 | Hydrothermal method | 10 mg/100 mL | 9.738 | 300 W Xe lamp | 15 mL Acetone + 5 mL TEOA +80 mL DI | 84.00% | [ |
| 1T-MoS2@C3N4 | Sonication-assisted hydrothermal method | 20 mg/100 mL | 0.565 | 300 W Xe lamp | 20 vol% TEOA | 79.00% | [ |
| 1T-MoS2/O-g-C3N4 | In-situ growth method | 10 mg/100 mL | 1.84172 | 300 W Xe lamp | 10 vol% TEOA | >70% | [ |
| CdSe/ZnS/1T-MoS2 | Lithium-ion intercalation exfoliation | 2.5 mg/5 mL | 155 | 300 W Xe lamp | 25 vol% Et3N | _ | [ |
| TiO2/1T-MoS2 | Self-assembly method | 15 mg/20 mL | 2 | 300 W Xe lamp | 25 vol% methanol | 57.00% | [ |
| TiO2/1T-WS2 | Colloidal synthesismethod | 200 mg/L | 2.57 | 300 W Xe lamp | DI: methanol = 3:1 | 100.00% | [ |
| O-1T-MoS2/CdS | Hydrothermal method | 2 mg/20 mL | 132.4 | 500 W metal halide lamp | 10% (v/v) HL: H2O | 87.00% | [ |
| ZnS@CdS@Cd0.5Zn0.5S-MoS2 | Solvothermal method | 10 mg/100 mL | 50.65 | 300 W Xe lamp | 10% (v/v) HL: H2O | - | [ |
| RGO/1T-MoS2 | One-step hydrothermal process | 0.1 g/30 mL | 71.2 | 250 W UV lamp | 30 mL ascorbic acid (3 × 10-2 M) and CoCl2·6H2O (2 × 10-4 M) | 100.00% | [ |
| 1T- PtS2/MCN | Cryo-mediated liquid phase exfoliation (LPE) | 50 mg/100 mL | 1.168 | 300 W Xe lamp | 10 vol% TEOA | - | [ |
| 1T-MoS2/Si-TiO2 | Hydrothermal method | 0.1 g/30 mL | 190 | 250 W UV lamp | 30 mL ascorbic acid (3 × 10-2 M) and CoCl2·6H2O (2 × 10-4 M) | - | [ |
| 1T-MoS2@g-C3N4 | Hydrothermal method | 50 mg/100 mL | 0.9487 | 300 W Xe lamp | HL | - | [ |
| MoS2/CdS | Solvothermal method | 10 mg/100 mL | 0.27258 | 300 W Xe lamp | 2.0 mL lactic acid alone or 0.010 mol glucose and 2.0 mL lactic acid | - | [ |
| CdS@1T-MoS2 | Solvothermal method | 20 mg/50 mL | 2.67 | 400 W Xe lamp | 15% (v/v) TEOA: H2O | - | [ |
| 1T-MoS2/TiO2(001) | Hydrothermal method | 25 mg/50 mL | 21.5 | Xe lamp, 73 mWcm-2 | 0.35 M Na2S and 0.25 M Na2SO3 | 79.50% | [ |
| WSe2-Zn0.1Cd0.9S | Colloidal method | 10 mg/40 mL | 147.32 | 500 W Xe lamp | 10%(v/v) HL: H2O | - | [ |
| MoS2/Zn0.5Co0.5S | Hydrothermal method | 30 mg/50 mL | 15.47 | 300 W Xe lamp | TEA, EY, acetonitrile | - | [ |
| 1T-MoS2@CdS | Hydrothermal method | 20 mg/100 mL | 17.479 | 300 W Xe lamp | 10%(v/v) HL: H2O | - | [ |
| CuS-1T -MoS2 | Hydrothermal method | 50 mg/50 mL | 9.6487 | 300 W Xe lamp | 0.3 M Na2SO3 | ∼70% | [ |
| 1T-MoS2/CdS | Lithium-ion intercalation exfoliation | 20 mg/100 mL | 0.79493 | 300 W Xe lamp | 10%(v/v) HL: H2O | - | [ |
| 1T-MoS2 QD@g-C3N4 | Ultrasonic mixing method | 20 mg/100 mL | 1.857 | 300 W Xe lamp | 20 vol% TEOA | ∼80% | [ |
| g-CN/1T-MoS2 | Li-intercalationexfoliation | 30 mg/100 mL | 5.62 | Xe lamp | 10 vol% TEOA | ∼68% | [ |
| 1T-MoS2-CdS | Ultrasonic mixing | 2 mg/20 mL | 131.7 | 500 W metal halide lamp | 10%(v/v) HL: H2O | >82% | [ |
| 1T-WS2@TiO2@Ti3C2 | Hydrothermal method | 10 mg/100 mL | 3.4098 | 300 W Xe lamp | 20 vol% TEOA | 73.00% | [ |
| 1TMoS2/MIL-125-NH2 | Hydrothermal method | 17 mg/17 mL | 1.454 | 300 W Xe lamp | MeCN: TEOA: H2O (79.0: 16.1: 4.9 v/v/v) | ∼75% | [ |
| CdS@1TMoS2 | Hydrothermal method | 50 mg/100 mL | 9.11 | 300 W Xe lamp | 10%(v/v) HL: H2O | 61.60% | [ |
| 1T'-MoS2@MoO3 | One-pot solvothermal method | 4 mg/100 mL | 22.108 | 300 W Xe lamp | 10 vol% TEOA | - | [ |
| TiO2@MoS2 | Hydrothermal intercalation/exfoliation | 20 mg/80 mL | 56 | 300 W Xe lamp | 20 vol% TEOA | 60.00% | [ |
| 1T-WS2/2D-C3N4 | Solvothermal process | 10 mg/100 mL | 0.33109 | 300 W Xe lamp | 10 vol% TEOA | 64.10% | [ |
| MoO3/1T-MoS2/g-C3N4 | In situ sulphuration | 10 mg/20 mL | 0.513 | 300 W Xe lamp | TEOA | - | [ |
| (Cl2) -(Bi12O17) -(MoS2) | Hydrothermal method | 10 mg/80 mL | 33 | 300 W Xe lamp | 0.3M HL | - | [ |
| 1T-WS2/g-C3N4 | Solvothermal process | 40 mg/100 mL | 1.021 | 300 W Xe lamp | 20 vol% TEOA | 65.30% | [ |
| MoS2@HCS (hollow carbon sphere) | Lithium intercalation method | 10 mg/100 mL | 7.2 | 300 W Xe lamp | 15 vol% TEOA pH8.5 | 47.00% | [ |
| 1T-MoS2/P25/NiOx | Lithium intercalation method | 100 mg/300 mL | 1.6291 | 300 W Xe lamp | 0.1 M methanol | ∼70% | [ |
Fig. 9. (a) Hydrogen evolution rates of different samples and loadings of 1T-MoS2; (b) Schematic illustration of the photocatalytic hydrogen evolution mechanism of 1T-MoS2@C3N4 nanorods (Reproduced with permission [111]. Copyright 2019, Royal Society of Chemistry, London); (c) Hydrogen evolution rate with different loadings of 1T-MoS2 quantum dots (QDs); (d) Schematic illustration of the hydrogen evolution mechanism of 1T-MoS2 QDs/g-C3N4 composite. (Reproduced with permission [115]. Copyright 2019, Royal Society of Chemistry, London.)
Fig. 10. (a) Transmission electron microscope (TEM) image; (b) Hydrogen evolution rates; (c) schematic illustration of the photocatalytic hydrogen evolution mechanism of 1T-MoS2/O-g-C3N4 (Reproduced with permission [141]. Copyright 2018, Elsevier.).
Fig. 11. (a) High resolution transmission electron microscope image of MoO3/1T-MoS2/g-C3N4, with further magnification in the inset; (b) Hydrogen evolution rates of different catalysts; (c) The hydrogen evolution mechanism of MoO3/1T-MoS2/g-C3N4. (Reproduced with permission [160]. Copyright 2019, Royal Society of Chemistry, London.).
Fig. 12. (a) Histogram of 1T phase and 2H phase MoS2 hydrogen evolution performance; Active sites and hydrogen evolution mechanism of MoS2 in (b)1T phase and (c) 2H phase. (Reproduced with permission [143]. Copyright 2014, Springer.).
Fig. 13. (a) TEM image of DRM-C; (b) Hydrogen evolution rates of different catalysts; (c) Conduction band positions of CdS, DFM, and DRM; (d) Schematic illustration of the hydrogen evolution mechanism for DFM-C and DRM-C. (Reproduced with permission [144]. Copyright 2018, Elsevier.).
Fig. 14. (a) HRTEM image of 1T-MoS2/CdS nanosheet; (b) photocatalytic hydrogen evolution rates of 1T-MoS2/CdS nanosheets; (c) hydrogen evolution mechanism of 1T-MoS2/CdS nanosheets. (Reproduced with permission [110]. Copyright 2019, Elsevier.).
Fig. 15. (a) TEM image of ZnS@CdS@Cd0.5Zn0.5S-MoS2; (b) HRTEM image of ZnS@CdS@Cd0.5Zn0.5S-MoS2; (c) Hydrogen evolution rates of different catalysts; (d) Hydrogen evolution mechanism of ZnS@CdS@Cd0.5Zn0.5S-MoS2. (Reproduced with permission [113]. Copyright 2020, Royal Society of Chemistry, London.)
Fig. 16. (a) Scanning electron micrograph of 2%MoS2/Zn0.5Co0.5S; (b) Photocatalytic hydrogen evolution curves in the presence of EY; (c) Schematic illustration of photocatalytic production of H2 on dye-sensitized 1T-MoS2/Zn0.5Co0.5S. (Reproduced with permission [112]. Copyright 2019, Royal Society of Chemistry, London.)
Fig. 17. SEM images of (a) Ti3C2, (b) MoS2, (c) Ti3C2/1T-MoS2, and (d) Ti3C2/TiO2/1T-MoS2; (e) Hydrogen evolution rates of different catalysts (f) Schematic illustration of the Ti3C2/TiO2/1T-MoS2 hydrogen evolution mechanism. (Reproduced with permission [108]. Copyright 2019, Royal Society of Chemistry, London.).
Fig. 18. (a) HRTEM image of a single promoter TiO2/1T-MoS2; (b) Hydrogen evolution rates of different catalysts; (c) Hydrogen evolution mechanism of MoS2/P25; (d) Hydrogen evolution mechanism of NiOx/P25; (e) Hydrogen evolution mechanism of MoS2/TiO2/NiOx. (Reproduced with permission [15]. Copyright 2020, Elsevier.).
Fig. 19. (a) SEM image of 1T-WS2; (b) Hydrogen evolution rated of different catalysts; (c) Hydrogen evolution mechanism of 1T-WS2/g-C3N4. (Reproduced with permission [114]. Copyright 2020, Elsevier.).
Fig. 20. (a) SEM image of 1T-WS2; (b) HRTEM image of 1T-WS2/2D-g-C3N4; (c) Hydrogen evolution mechanism of different catalysts; (d)Hydrogen evolution mechanism of 1T-WS2/2D-g-C3N4. (Reproduced with permission [136]. Copyright 2020, Elsevier.).
Fig. 21. (a) SEM image of 1T-WS2@TiO2@Ti3C2; (b) Hydrogen evolution rated of different catalysts; (c) Hydrogen evolution mechanism of 1T-WS2@TiO2@Ti3C2. (Reproduced with permission [156]. Copyright 2019, Springer.).
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