Si-C Silicon-Carbon Single-Sided Anode, 5.5 mg/cm² per side

$89.00

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single-sided Si-C silicon-carbon anode sheet for lithium-ion battery research. Key specifications: 5.5 mg/cm2 areal loading, 90.30% active material, 1350 mAh/g active-material capacity reference, 5-Pack. Suitable for silicon-containing anode evaluation, electrolyte studies, formation work, and lithium-ion cathode pairing.

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1 – 4 $89.00
5+ $79.00
SKU: AF-BM-S-A1350-CS55-5P1
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Si-C Silicon-Carbon Single-Sided Anode, 5.5 mg/cm² per side
Single-Sided Anode Sheet
Product Overview

Si-C Silicon-Carbon Single-Sided Anode, 5.5 mg/cm² per side is a pre-coated Silicon-Carbon (Si-C) electrode with an areal loading of 5.5 mg/cm² per side, a 90.30% active material ratio, and wet-process fabrication. The coated area is 14 × 8, with a Carbon-Coated Copper Foil current collector, and and a current collector areal density of 5.4mg/cm². This defined single-sided format is intended for controlled battery electrode research and comparison work. The active material system, coating side, coating loading, coating area, current collector, and compaction density can be customized for a specified research configuration.

Technical Specifications
Parameter Specification / Available Values
Product Type Single-Sided Anode Sheet
Active Material System Silicon-Carbon (Si-C)
Coating Side Single-Sided
Areal Loading 5.5 mg/cm² per side
Active Material Ratio 90.30%
Coating Process Wet Process
Coating Area 14 × 8
Current Collector Carbon-Coated Copper Foil
Current Collector Areal Density 5.4mg/cm²
Pack Size 5-Pack
Customization: The electrode format and selected specifications may be customized according to the target research configuration. Please confirm the required specification, coating format, quantity, and packaging before quotation.
Notice: Technical values may have reasonable measurement, batch, or documentation deviations. Please confirm the final specification and configuration before quotation and use.
Related Categories
Research Direction Related Category Use
Compare active battery materials Lithium-Ion Anode Materials Powder materials and active-material selection.
Build pouch-cell research samples Dry Cells Unfilled dry pouch-cell formats for cell assembly workflows.
Compare the opposite electrode format Lithium-Ion Cathode Electrode Sheets Cathode comparison and anode-cathode matching.
LABORATORY PROCUREMENT SUPPORT
Contact our technical sales team for material, format, and configuration confirmation.
E-MAIL: inquiry@atomfair.com
Supplier: Atomfair
Brand: ATOMFAIR®

The anode sheet requires a dry handling environment and inert atmosphere storage to prevent moisture-induced degradation. The carbon-coated copper current collector interface is sensitive to contamination and mechanical stress, which can affect early-cycle performance.

  • Moisture Sensitivity: Store opened sheets in a dry environment or inert atmosphere to reduce moisture exposure before use.
  • Surface Integrity: Avoid touching, bending, scratching, or contaminating the coated surface during punching, transfer, and stacking.
  • Interface Stability: The carbon-coated copper current collector improves interfacial contact but requires careful handling to maintain electrode integrity.
  • Capacity Loss Consideration: Silicon-related irreversible capacity loss must be accounted for in cell balancing and formation procedures.
  • Electrolyte Compatibility: Electrolyte systems should be evaluated for SEI formation behavior and first-cycle efficiency under silicon-containing anode conditions.

Use a dry environment and inert atmosphere for handling and storage to minimize moisture contamination. Determine active material mass from coating loading, active material ratio, and punched electrode area for accurate cell balancing.

Required Equipment: Dry handling environment (glovebox or dry room), Inert atmosphere (argon or nitrogen)

  1. Transfer to dry environment
    Transfer the anode sheet to a dry glovebox or dry room environment before opening the packaging.
  2. Store in inert atmosphere
    Store opened sheets in an inert atmosphere or dry environment to minimize moisture exposure until use.
  3. Inspect coated surface
    Inspect the coated surface for any visible defects or contamination before punching.
  4. Punch electrode discs
    Punch electrode discs from the sheet, taking care not to touch, bend, or scratch the coated surface.
  5. Calculate active material mass
    Calculate the active material mass using the coating loading, active material ratio, and punched electrode area.
  6. Assemble cell promptly
    Assemble the cell immediately after punching to minimize air exposure.

How does the composite specific capacity of 1350 mAh/g relate to the actual areal capacity for cell balancing?

The theoretical areal capacity is approximately 6.7 mAh/cm² based on the coating loading of 5.5 mg/cm², 90.30% active material ratio, and composite specific capacity of 1350 mAh/g. Actual measured capacity will depend on punched electrode area, coating uniformity, drying protocol, electrolyte system, formation procedure, pressure, voltage window, and silicon-related irreversible capacity loss.

What cathode loading and N/P ratio should be used when matching this anode for full-cell lithium-ion experiments?

The source does not prescribe a specific N/P ratio, but the product is designed for early-stage full-cell matching. Users should calculate active material mass from the coating loading (5.5 mg/cm²), active material ratio (90.30%), and punched electrode area, then balance with a cathode of known areal capacity. The theoretical areal capacity of ~6.7 mAh/cm² serves as a starting point for N/P balancing, and actual capacity must be determined experimentally.

What storage and handling conditions are required for this Si-C/graphite anode sheet to maintain performance?

Use a dry handling environment before cell assembly to reduce moisture exposure on the coated electrode surface. Store opened sheets in a dry environment or inert atmosphere to minimize moisture uptake. Avoid touching, bending, scratching, or contaminating the coated surface during punching, transfer, and stacking. The carbon-coated copper current collector (1 µm carbon coating on each side of 6 µm copper foil) improves interfacial contact but does not eliminate moisture sensitivity.

This single-sided Si-C/graphite anode sheet delivers a 1350 mAh/g composite active-material capacity at 5.5 mg/cm2 loading on a carbon-coated copper current collector, yielding a theoretical areal capacity of ~6.7 mAh/cm2. The carbon-coated collector enhances interfacial contact for silicon-containing anodes, but performance is sensitive to electrode handling, formation conditions, and silicon-related irreversible capacity loss.

Positive

  • High composite capacity for advanced anode studies: The 1350 mAh/g active-material capacity (with 90.30% active ratio at 5.5 mg/cm2 loading) yields a theoretical areal capacity of ~6.7 mAh/cm2, enabling evaluation of high-capacity Si-C/graphite anodes beyond standard graphite in coin or pouch cells.
  • Carbon-coated copper collector improves interface stability: The double-side carbon-coated copper foil (1 µm carbon/6 µm Cu/1 µm carbon) enhances interfacial contact between the coating and current collector, a critical factor for silicon-containing anodes where interface integrity affects early-cycle data.

Trade-offs

  • Requires dry handling and inert storage: The coated electrode surface is moisture-sensitive; dry handling before assembly and storage in a dry or inert atmosphere are explicitly required to reduce moisture exposure that could degrade electrode performance.
  • Performance varies with test conditions and irreversible loss: Measured capacity depends on punched electrode area, coating uniformity, drying protocol, electrolyte system, formation procedure, pressure, voltage window, and silicon-related irreversible capacity loss, so actual areal capacity may deviate from the theoretical 6.7 mAh/cm2.

Every advanced material, component, equipment, and instrument in our catalog is backed by rigorous testing. We maintain strict internal quality management frameworks and align with CE conformity metrics to deliver transparent, reproducible performance data via our public open-science repository.

To request raw batch performance data, submit formal vendor registration paperwork, or execute a fast-turnaround R&D manufacturing loop, contact us at inquiry@atomfair.com.

Item is dispatched under the Atomfair Shipping & Delivery Framework (Free worldwide shipping on orders over $59 USD excl. heavy equipment). Return is governed by the Atomfair Return & Refund Policy (7-day technical return window).