ENERGY · SOLAR CELL ENHANCEMENT

Use more of
the sun.

Photovoltaic cells only use part of the solar spectrum efficiently. Intelligent Material can be engineered as wavelength-converting layers that move otherwise poorly used UV and infrared photons into spectral regions the solar cell can harvest more effectively.

SUNLIGHTSPECTRAL CONVERSIONADD-ON THIN FILMPV CELL
THE IDEA

Convert photons before they reach the semiconductor.

The optical conversion layer is separate from the semiconductor physics of the solar cell. That matters because it creates a route to improve light utilization without redesigning the underlying PV junction.

For high-energy UV photons, a down-converting material can shift light toward longer wavelengths. For lower-energy infrared photons, an up-converting material can combine absorbed energy and re-emit at shorter wavelengths that better match the response of the cell.

The design problem is therefore a materials problem: match the crystal absorption, emission, lifetime, particle geometry and film architecture to the photovoltaic platform.

01 · Down conversion

Recover high-energy light.

Shift UV and near-UV photons toward visible or near-infrared wavelengths that can be captured more effectively by the PV device.

02 · Up conversion

Recover sub-bandgap light.

Absorb lower-energy near-infrared or short-wave infrared photons and convert them into higher-energy emission that the cell can use.

03 · Photon management

Keep converted light moving into the cell.

Use core/shell design, plasmonic enhancement, refractive-index control and film structure to improve absorption, emission and optical coupling.

INTEGRATION

A materials layer, not a new solar-cell architecture.

The original IMS/Penn program was built around low-temperature, post-cell-manufacture coatings so the wavelength-conversion function could be added without disturbing the underlying semiconductor process.

The opportunity is broad: tune the conversion material to the actual absorption window of crystalline silicon, CdTe, CIGS or another photovoltaic platform, then optimize the coating for transparency, durability and coupling.
Protective top sheet transparent / durable
↓
Down-conversion layer UV → useful wavelength
↓
Encapsulant / optical coupling index matched
↓
Photovoltaic cell electrical conversion
↓
Up-conversion layer IR → useful wavelength
↓
Reflector / backplane photon return
CUSTOM MATERIAL DEVELOPMENT

Match the material to the solar cell.

IMS can vary the same parameters that determine whether a wavelength-conversion coating is useful in practice: host lattice, rare-earth dopants, concentration, particle dimensions, morphology, core/shell architecture, plasmonic coupling, surface chemistry and film loading.

01

Map the losses

Identify which parts of the incident spectrum are poorly used by the target PV platform.

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02

Design the crystal

Choose absorption and emission pathways matched to the desired spectral shift.

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03

Engineer the film

Optimize loading, dispersion, thickness, refractive index and environmental stability.

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04

Measure the cell

Evaluate optical gain, electrical efficiency, durability and manufacturability as one system.

ENERGY APPLICATIONS

Three different ways to engineer energy and information.

Solar enhancement is one branch of the broader IMS energy work. The other two pages focus on light-driven hydrogen chemistry and subsurface hydrocarbon discovery.

Design the coating around the photons the cell is losing.

IMS can develop custom Intelligent Material candidates and thin-film concepts for photovoltaic companies, coating manufacturers and advanced-energy programs.

Work with IMS