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TECHNOLOGY · Field-Driven Solid-State Battery System

From passive diffusion
to active field-driven transport

Every QuanVol product is built on the same technology platform:field-driven solid-state battery technology system. It is not a substitute for any single class of electrolyte, but a cross-system ion transport enabling technology that can be layered onto liquid, hybrid liquid-solid, and solid-state production lines alike.

TECHNICAL DEFINITION

Technical definition (standard wording)

A field-driven solid-state battery is a solid-state battery system into which ferroelectric functional materials with spontaneous polarization are introduced. The built-in electric field they generate actively drives the rapid migration of lithium and sodium ions across electrodes, electrolytes, and interfaces, upgrading ion transport from passive diffusion to active field-driven movement.

Not a branch of oxide, sulfide, or polymer systems A cross-system enabling technology for ion transport Compatible with liquid, hybrid liquid-solid, and solid-state production lines
HOW IT WORKS

How the built-in electric field drives ion migration

01 · Spontaneous polarization

Ferroelectric functional materials polarize spontaneously within the system, establishing a stable internal built-in electric field without any external power source.

02 · Active driving

The built-in electric field applies a directional force to lithium and sodium ions, actively driving them across electrodes, electrolytes, and interfaces.

03 · Interface optimization

Migration resistance falls and interfacial impedance decreases, releasing ion transport from the constraints of passive diffusion.

04 · Production line compatibility

Not tied to a single electrolyte route. Existing production lines need only a core material change and minor equipment modification to complete a solid-state upgrade.

CAPABILITY

How QuanVol technology is structured

Technology systemThe field-driven solid-state battery system, in which a built-in electric field generated by the spontaneous polarization of ferroelectric materials actively drives ion migration
Material systemField-driven functional coating separator, composite solid-state electrolyte
Product and standards systemProduct definition, sample validation, quality control, and QuanVol Inside certification

The QuanVol technology system centers on field-driven ion transport and is supported by proprietary field-driven functional coating separators and composite solid-state electrolyte materials, forming a complete technology chain from materials to solid-state battery products.

MATERIAL SYSTEM

Two key materials
are what QuanVol is really built on

Field-driven functional coating separator: relies on ferroelectric spontaneous polarization to form an intrinsic built-in electric field that actively drives efficient ion migration. Compatible with liquid, hybrid liquid-solid, and solid-state production lines, requiring only minor equipment modification.

Composite solid-state electrolyte: matches the field-driven interface system, is compatible with mass production processes, offers high stability and broad applicability, and is not tied to a single oxide, sulfide, or polymer route.

Existing production line compatibility:The QuanVol field-driven technology system is one of the few solid-state upgrade paths in the industry designed for existing production lines. Existing liquid battery lines do not need to be demolished and rebuilt; a core material change plus minor equipment modification completes the solid-state upgrade.
QuanVol solid-state cell products
MATERIALS & OUTPUT

The technology is not only for internal use, it is delivered outward

The QuanVol field-driven technology platform opens two outward channels: supply you the materials, hand you the process.

Supply you the materials

The field-driven coated separator and composite solid-state electrolyte are supplied externally. An existing liquid-electrolyte line upgrades by switching materials with light equipment modification, with no new plant.

  • Roll, powder or slurry, confirmed against your line specifications and process route
  • Material-system-level data is available and open to sample validation
  • One consistent quality specification, supplied to the same standard for the same spec
See the materials business

Hand you the process

Field-driven solid-state battery technology output turns the platform into an executable production line upgrade plan, delivered to cell or battery makers that already operate a lithium battery line.

  • Line fit assessment + material matching plan + process parameter package
  • Retrofit proposal plus validation and data alignment
  • Staff training and on-site support through trial production
See technology output
MEASURED DATA

System and material level measured data

This dataset is at the material and technology system level. It is intended for technical content and customer technical discussions and does not represent the performance specifications of any specific cell model.

Critical current density6.1 mA cm⁻²
Increase in free Li⁺72%
Room-temperature ionic conductivity of composite electrolyte8.4 × 10⁻⁴ S cm⁻¹ (measured after pilot-scale modification at the hundred-kilogram level)
Interfacial impedance reductionReduced by 1 to 2 orders of magnitude
Long-term cycling of lithium symmetric cells9,200 hours of stable operation

Material system modification results

System-level data, available for citation on request
ParameterBefore modificationAfter modification
Ion conduction capability0.62 mS/cm0.84 mS/cm(+35%)
Lithium-ion transference number0.400.65(+63%)
NCM811 half-cell first-cycle efficiency89.2%91.7%
Capacity retention after high-temperature cycling at 55℃38.9%72.1%
Room-temperature ionic conductivity of oxide LATP0.95×10⁻⁴ S/cm1.26×10⁻⁴ S/cm(+32%)
Critical current density of oxide LATP0.52 mA/cm²0.89 mA/cm²(+71%)

Product-level capability ranges

Capability ranges measured within the QuanVol system, not the datasheet of any single model
ParameterCapability rangeTest basis
Extreme stable operating range-40℃ ~ 80℃Verified by high and low temperature testing
Safety nail penetration performanceNo fire, no explosion under nail penetrationNail penetration test per national standard
NCM system cycling3,000 cycles with 80% capacity retentionPilot-scale batch data
LFP system cyclingMore than 8,000 cyclesPilot-scale batch data
Production line compatibilityExisting liquid production lines can be upgraded directlyField-driven separator replacement plus matching solid-state electrolyte

The values above are capability ranges measured within the QuanVol system, not the datasheet of any single model. Specific models across product lines (3C consumer, drone, low-speed light electric vehicle, and others) carry different values, and citations must state the model and test conditions.

MATURITY

An objective statement of maturity

The technology system, material system, and product system have been proven end to end. QuanVol is currently in the pilot-mature, batch-validation, and scaling-toward-mass-production stage. Long-cycle, vehicle-level validation on complete vehicles is a shared next step for the entire industry.

On the technology direction: using the built-in electric field generated by the spontaneous polarization of ferroelectric materials to regulate ion transport is one of the frontier directions in the solid-state battery field.

Need more technical detail?

QuanVol can provide a technology platform overview, material parameters and measured product data. Send us your application and parameter requirements and we will deliver a technical plan alongside; cell makers with production lines can start with a line fit assessment.