Interface Modulation and Lithium Dendrite Suppression of LLTO via Synergistic KH560-PDA Co-Grafting for PVDF-HFP Composite Solid Electrolytes
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Experimental Scheme
2.3. Preparation Procedures
- (1)
- Synthesis of KH560-PDA@LLTO: PDA@LLTO was first prepared: 36 mg Tris and dopamine hydrochloride (2.4% of the mass of LLTO) were dissolved in 30 mL methanol, followed by the addition of 2.5 g LLTO powder. The brown suspension was stirred at 500 rpm for 16 h under ambient conditions, then washed 2~3 times with methanol and dried at 80 °C under vacuum for 24 h to obtain PDA@LLTO. For KH560 grafting: PDA@LLTO was dispersed in anhydrous ethanol and ultrasonicated for 20 min. KH560 (1%, 2%, 3%, 4% of PDA@LLTO mass) was added, and the mixture was stirred at 60 °C for 6 h to allow ring-opening reactions between epoxy groups of KH560 and amino groups of PDA. The product was centrifuged, washed 2~3 times with anhydrous ethanol, and vacuum-dried at 80 °C for 8 h to yield KH560-PDA@LLTO. After KH560 grafting, the color of PDA@LLTO particles changed from white to brown.
- (2)
- Fabrication of KH560-PDA@LLTO/PVDF-HFP Membranes: Composite electrolyte films were prepared via solution casting. PVDF-HFP was dissolved in DMF at 60 °C under stirring. LiTFSI and KH560-PDA@LLTO powder were added, ultrasonicated for 30 min, and stirred for 12 h. The homogeneous slurry was degassed in vacuum, cast onto a substrate, and dried at 60 °C under vacuum for 10 h. The preparation process is shown in Figure 1c. The resulting film was punched into 16 mm-diameter disks for coin-cell assembly. The composite films with different KH560 grafting amounts were labeled as 1 wt% K-PLP, 2 wt% K-PLP, 3 wt% K-PLP, and 4 wt% K-PLP, respectively. Secondly, PDA@LLTO/PVDF-HFP is designated as PLP, while LLTO/PVDF-HFP is designated as LP.
2.4. Material Characterization
2.5. Electrochemical Measurements
2.6. Cathode Preparation and Cell Assembly
3. Results and Discussion
3.1. Characterization of KH560-Grafted PDA@LLTO
3.2. Microstructure and Physical Properties of Composite Membranes
3.3. Electrochemical Performance
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Sample | Rs/Ω (95%CI) | Rct/Ω (95%CI) | CPE-P | Warburg Coefficient/Ω·s−1/2 |
|---|---|---|---|---|
| 1 wt% K-PLP | 18.5 ± 0.8 | 173 ± 3 | 0.87 | 4.08 |
| 2 wt% K-PLP | 16.9 ± 0.7 | 130 ± 3 | 0.88 | 4.72 |
| 3 wt% K-PLP | 14.2 ± 0.6 | 124 ± 2 | 0.90 | 5.41 |
| 4 wt% K-PLP | 17.6 ± 0.7 | 175 ± 3 | 0.86 | 3.95 |
| Modification Method | Modified Filler | Magnitude of Room-Temperature Ionic Conductivity of Electrolytes | Lithium Transference Number (Li+) | Full-Battery Capacity Retention | Source of Literature |
|---|---|---|---|---|---|
| Single PDA coating | LLZTO | 1.11 × 10−4 S cm−1 | 0.40 | 83%@100 cycles (0.1 C) | Huang et al. [38] |
| Single PDA coating | LLTO | 4.16 × 10−4 S cm−1 | 0.45 | 78.8%@400 cycles (0.4 C) | Jia et al. [13] |
| Single modification with KH560 | @InF3 | 2.1 × 10−4 S cm−1 | 0.73 | 83.6%@800 cycles (10 C) | Chen et al. [37] |
| Single modification with KH560 | Porous LLTO | 2.37 × 10−3 S cm−1 (60 °C) | 0.57 | - | CHI et al. [19] |
| Co-grafting Modification with KH560/PDA | LLTO | 5.92 × 10−4 S cm−1 | 0.88 | 97.3%@200 cycles (0.5C) 75.7%@200 cycles (2 C) | This work |
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Wang, D.; Fei, Z.; Zheng, D. Interface Modulation and Lithium Dendrite Suppression of LLTO via Synergistic KH560-PDA Co-Grafting for PVDF-HFP Composite Solid Electrolytes. Materials 2026, 19, 3113. https://doi.org/10.3390/ma19143113
Wang D, Fei Z, Zheng D. Interface Modulation and Lithium Dendrite Suppression of LLTO via Synergistic KH560-PDA Co-Grafting for PVDF-HFP Composite Solid Electrolytes. Materials. 2026; 19(14):3113. https://doi.org/10.3390/ma19143113
Chicago/Turabian StyleWang, Dingqin, Zihao Fei, and Deyi Zheng. 2026. "Interface Modulation and Lithium Dendrite Suppression of LLTO via Synergistic KH560-PDA Co-Grafting for PVDF-HFP Composite Solid Electrolytes" Materials 19, no. 14: 3113. https://doi.org/10.3390/ma19143113
APA StyleWang, D., Fei, Z., & Zheng, D. (2026). Interface Modulation and Lithium Dendrite Suppression of LLTO via Synergistic KH560-PDA Co-Grafting for PVDF-HFP Composite Solid Electrolytes. Materials, 19(14), 3113. https://doi.org/10.3390/ma19143113
