Details
| Canrd | 10*10cm | 5 sheets/pack | Coating | ||||
| NO. | Electrode Name | Model | Main Material | Active Material Capacity (mAh/g) | Loading | Areal Density (mg/cm²) | Areal Capacity (mAh/cm²) |
| 1 | NCA Electrode | SY51 | NCA-S (Nickel Cobalt Aluminum Oxide) | 195 | 94.50% | 17.66 | 3.25 |
| 2 | Ni90 Electrode | SY41 | Ni90 Single Crystal NCM | 195 | 94.50% | 9.50 | 1.75 |
| 3 | NCM811 Electrode | SY33 | NCM811 Single Crystal | 188 | 94.50% | 9.20 | 1.63 |
| 4 | NCM811 Electrode | SY34 | — | 188 | 94.50% | 21.50 | 3.82 |
| 5 | NCM622 Electrode | SY25 | NCM622 Single Crystal-B | 168 | 96.70% | 10.00 | 1.62 |
| 6 | NCM622 Electrode | SY24 | — | 168 | 96.70% | 21.60 | 3.51 |
| 7 | NCM523 Electrode | SY15 | NCM523 | 165 | 94.00% | 19.70 | 3.06 |
| 8 | NCM523 Electrode | SY13 | NCM523 | 165 | 94.00% | 10.50 | 1.63 |
| 9 | LCO Electrode | LC02 | High Voltage Lithium Cobalt Oxide-Z-4.45V | 178 | 96.40% | 10.00 | 1.72 |
| 10 | LRM Electrode | FL01 | Lithium-rich Manganese-based-E | 280 | 95.00% | 5.96 | 1.59 |
| 11 | Graphite Electrode | SM02 | Natural Graphite (Standard)-A | 340 | 95.70% | 5.80 | 1.89 |
| 12 | Fast Charging Graphite Electrode | SM04 | Fast Charging Graphite-B | 350 | 96.70% | 5.60 | 1.90 |
| 13 | Silicon Carbon Electrode | SC02 | Silicon Carbon Anode 1800 (Porous Carbon Deposited Silicon) | 420 | 95.00% | 4.80 | 1.92 |
| 14 | NFM Electrode | NT02 | Sodium Nickel Iron Manganese Oxide | 127 | 95.50% | 12.27 | 1.49 |
| 15 | NFM Electrode | NT03 | — | 127 | 95.50% | 8.00 | 0.97 |
| 16 | Hard Carbon Electrode | YT02 | Imported Hard Carbon (5 μm) | 300 | 95.50% | 6.00 | 1.72 |
| 17 | LFP Electrode | LF07 | Lithium Iron Phosphate (High Compaction Density) |
150 | 91.50% | 12.30 | 1.69 |
| 18 | LNMO Electrode | NM01 | High Voltage Lithium Nickel Manganese Oxide-B | 130 | 96.00% | 7.50 | 2.00 |
| 19 | NFPP Electrode | NF01 | Sodium Iron Phosphate Pyrophosphate | 100 | 93.50% | 15.30 | 1.43 |
| 20 | Vanadium Pentoxide Electrode | VO02 | Vanadium Pentoxide | 300 | 80.00% | 5.00 | 1.20 |
| 21 | Manganese Dioxide Electrode | MO01 | Manganese-based or Vanadium-based Material | 100 | 80.00% | 5.00 | / |
| 22 | Zinc Negative Electrode | ZA01 | Pure Zinc Powder / Alloy Zinc Powder | / | 70.0%–96.0% | 5.0–15.0 | / |
MOQ for Custom Small Electrode Sheets: 10*10cm/pcs,5cs/pack,1pack
To place an order or request a quotation, please Contact Us.
1, vacuum storage or glove box with self-sealing bag 2 layers of packaging, especially high nickel, sodium positive electrode materials, improper storage will lead to increased battery internal resistance
2, pole piece is not rolled, need to be rolled according to the recommended compaction density
3, coating surface density should be determined according to the actual weighing results, the surface density of the coating does not include the current collector
4. the actual weighing calculates the mass of the active substance (mg)= (the weight of the small disc mg-the surface density of the current collector mg/cm2 * the area of the small disc cm2)* the proportion of the active substance
5, the amount of the theoretical active substance (mg)= the surface density of the coating mg/cm2 * the proportion of the active substance * the small disc cm2
6, and the theoretical surface capacity mAh/cm2 = coating surface density mg/cm2 * active substance ratio * gram capacity mAh/g ÷ 1000
7. when calculating gram capacity, it is calculated according to the amount of active substance actually weighed, due to the tolerance of coating surface density, the actual weighing shall prevail
8. crease: single-sided pole piece is easy to roll after rolling, and flat packing may lead to crease
9. vanadium pentoxide pole piece defect: during production, packaging or transportation, the surface of pole piece is easy to be worn and scratches and other obvious traces
10. during punching and cutting, the exposed foil is easy to fall off at the edge of the pole piece, as shown in the following figure:



1. in order to inhibit expansion, the positive and negative electrodes need to be compacted during power deduction assembly;
2. the test chart shown below shows that the electrolyte used is 2M zinc sulfate and the current is 0.1A/g;
3. the improvement of gram capacity and cycle performance by optimizing electrolyte is clear, and no standardized formula has been provided yet. Pole piece can assist in electrolyte development

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