Zn Metal Anodes for Zn-Ion Batteries in Mild Aqueous Electrolytes: Challenges and Strategies
Abstract
:1. Introduction
2. Challenges in the Commercialization of Zn Metal Anodes
Zn Anode Reactions
3. Assembly and Test Technology of Zn-Ion Batteries with Zn Metal Anodes
3.1. Cell Assembly
3.2. Cell Test
4. Drawbacks of Zn Metal Anodes in Mildly Acidic Electrolytes
4.1. Zn Dendrite Growth
4.2. Zn Electrode Corrosion
4.3. Hydrogen Evolution
5. Common Strategies for Modifying the Surface of Zn Metal Anodes
5.1. Shielding the Zn Surface
5.2. Regulating the Zn Deposition Behavior
5.2.1. Controlling the Nucleation Sites
5.2.2. Redistributing Zn2+ Ion Flux
5.3. Creating Uniform Electric Field
6. Conclusions and Outlook
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Components | Representative Material |
---|---|
Anode material | Zn foil (80.0 mm in diameter, 0.25 mm in thickness) |
Cathode material | α-MnO2, β-MnO2, V-based materials, Prussian blue analogues |
Cathode current collector | Stainless steel spring (15.4 mm in diameter and 1.1 mm in thickness) |
Separator | Whatman glass fiber filter |
Electrolyte | 2 M ZnSO4 with 0.1 M MnSO4 |
Anode | Mechanism | Corrosion Potential (V) (vs. Ag/AgCl) | Symmetrical Cell Performance:Lifespan (h), Capacity, and Current Density | Full-cell Performance:Capacity (mAh g−1)/Cycle/Capacity Retention (%)/Current Density (mA g−1) | Ref |
---|---|---|---|---|---|
TiO2@Zn | Shielding Zn surface | −0.89 | 150 h 1 mA cm−2, 1 mAhcm−2 | 134 mAh g−1/1000 cycles/85%/1 A g−1 | [116] |
Al2O3@Zn | Shielding Zn surface | −0.88 | 500 h 1 mA cm−2, 1 mAh cm−2 | 158 mAh g−1/1000 cycles/89%/1 A g−1 | [117] |
Cu-Zn/Zn | Shielding Zn surface | −0.96 | 1500 h 1 mA cm−2, 0.5 mAh cm−2 | - | [101] |
rGO@Zn | Shielding Zn surface | - | 300 h 1 mA cm−2, 0.5 mAh cm−2 | 61 mAh g−1/5000 cycles/86%/1 A g−1 | [119] |
NA-Zn | Controlling nucleation sites | - | 2000 h 0.25 mA cm−2, 0.05 mAh cm−2 | 67 mAh g−1/2000 cycles/-/0.5 A g−1 | [120] |
ZrO2@ Zn | Controlling nucleation sites | - | 2100 h 5 mA cm−2, 1 mAh cm−2 | 52 mAh g−1/3000 cycles/42%/1 A g−1 | [121] |
CaCO3@Zn | Controlling nucleation sites | - | 900 h 0.25 mA cm−2, 0.05 mAh cm−2 | 177 mAh g−1/1000 cycles/86%/1 A g−1 | [92] |
CNT@Zn | Controlling nucleation sites | - | 200 h 2 mA cm−2, 2 mAh cm−2 | 167 mAh g−1/1000 cycles/89%/- | [122] |
PA@Zn | Redistributing Zn2+ ion flux | −0.96 | 8000 h 0.5 mA cm−2, 0.25 mAh cm−2 | 154 mAh g−1/1000 cycles/88%/0.6 A g−1 | [94] |
PVDF@Zn | Redistributing Zn2+ ion flux | - | 2000 h 0.25 mA cm−2, 0.05 mAh cm−2 | 57 mAh g−1/2000 cycles/-/1 A g−1 | [123] |
MOF-PVDF@Zn | Redistributing Zn2+ ion flux | - | 500 h 1 mA cm−2, 0.5 mAh cm−2 | - | [124] |
BTO@Zn | Creating uniform electric field | - | 1500 h 5 mA cm−2, 0.5 mAh cm−2 | 74 mAh g−1/300 cycles/67%/2 A g−1 | [125] |
CM@CuO@Zn | Creating uniform electric field | - | 350 h 1 mA cm−2, 1 mAh cm−2 | - | [126] |
NC@Zn | Creating uniform electric field | - | 300 h 1 mA cm−2, 0.5 mAh cm−2 | - | [127] |
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Hoang Huy, V.P.; Hieu, L.T.; Hur, J. Zn Metal Anodes for Zn-Ion Batteries in Mild Aqueous Electrolytes: Challenges and Strategies. Nanomaterials 2021, 11, 2746. https://doi.org/10.3390/nano11102746
Hoang Huy VP, Hieu LT, Hur J. Zn Metal Anodes for Zn-Ion Batteries in Mild Aqueous Electrolytes: Challenges and Strategies. Nanomaterials. 2021; 11(10):2746. https://doi.org/10.3390/nano11102746
Chicago/Turabian StyleHoang Huy, Vo Pham, Luong Trung Hieu, and Jaehyun Hur. 2021. "Zn Metal Anodes for Zn-Ion Batteries in Mild Aqueous Electrolytes: Challenges and Strategies" Nanomaterials 11, no. 10: 2746. https://doi.org/10.3390/nano11102746
APA StyleHoang Huy, V. P., Hieu, L. T., & Hur, J. (2021). Zn Metal Anodes for Zn-Ion Batteries in Mild Aqueous Electrolytes: Challenges and Strategies. Nanomaterials, 11(10), 2746. https://doi.org/10.3390/nano11102746