LIGHTING · SPECTRAL ENGINEERING

Engineer
the spectrum.

Lighting is no longer only about making something bright. Intelligent Material can be engineered to convert wavelengths, shape spectra, manage directionality and create optical functions that conventional emitters alone cannot provide.

IR
SOURCE
INTELLIGENT MATERIAL
PLASMONIC COUPLING
LIGHT CONTROL
conversion · enhancement · extraction
THE MATERIAL LAYER

Control what light becomes.

IMS can tune host lattice, activator chemistry, particle size and morphology, core/shell architecture, plasmonic coupling, lifetime, scattering and surface chemistry around the optical behavior a lighting system needs.

From source to engineered output.

Start with the available source — visible, ultraviolet or near-infrared — then design the material around the required emission, directionality, lifetime, thermal environment and integration format.

UPCONVERSIONDOWNCONVERSIONNARROWBAND EMISSIONMULTI-BAND WHITECORE / SHELLPLASMONIC COUPLINGSCATTER CONTROLFILMS + COATINGS
ENGINEERED SPECTRUM
Build the output around the application, not the other way around.
APPLICATIONS

One materials platform. Seven lighting directions.

Some are near-term materials-engineering opportunities; others are research programs where the material, emitter and optical stack would be developed together.

01 · IR → VISIBLE / UV

Plasmonic-enhanced upconversion

Pair efficient near-infrared emitters with Intelligent Material conversion layers and engineered metal nanostructures to improve optical coupling and light extraction.

  • 850 / 940 / 980 / 1064 nm pump options
  • Visible, deep-blue or near-UV development targets
  • Directional output and compact optical stacks
  • Potential for specialty colors and secure illumination
R&D PLATFORM
02 · WHITE LIGHT

Human-centric & spectral-tuned lighting

Move beyond a single broad phosphor band. Multiple narrow emission bands can be combined to shape color rendering, warm/cool balance and application-specific spectra.

  • High-fidelity red, amber, green and cyan control
  • Day / evening spectral modes
  • Custom spectra for museums, retail and clinical environments
  • Stable material signatures for repeatable output
SPECTRAL DESIGN
03 · INVISIBLE LIGHT

IR / NIR illumination for vision & sensing

Not all lighting is meant for human eyes. IMS can support narrowband infrared illumination, spectral signatures and compact light-control structures for machines.

  • 850 and 940 nm machine vision
  • Face, iris and vein imaging
  • Gesture / depth sensing illumination
  • Structured or authenticated optical patterns
MACHINE VISION
04 · VOLUMETRIC CURING

Deep polymerization & industrial curing

Instead of forcing blue or UV light through an absorbing material from the surface, place the wavelength-conversion function inside the resin or coating and excite it with a more penetrating source.

  • 3-D printing and filled resins
  • Electronic and automotive adhesives
  • Coatings and clearcoats
  • Dental / medical materials development
DEVELOPMENT CONCEPT
05 · CLINICAL LIGHT

Medical & therapeutic illumination

Engineer light sources around the biology: narrow red/NIR bands, visible treatment wavelengths, or local wavelength conversion for photodynamic and related optical therapies.

  • Photobiomodulation source development
  • PDT wavelength matching
  • Hybrid illumination + treatment fixtures
  • Spectral dose / identity concepts
SEE THERAPEUTICS →
06 · DUAL-MODE LIGHTING

Safety, disinfection & controlled UV

A fixture can provide normal visible illumination and a second optical mode for controlled ultraviolet or antimicrobial wavelengths. IMS can be explored as the local conversion layer rather than relying only on a separate UV source.

  • Air handling and enclosed systems
  • Food-processing equipment
  • Clinical and industrial surfaces
  • Directional / locally generated UV concepts
VALIDATION REQUIRED
07 · EXPERIENCE

Architectural & experiential lighting

Make the material itself part of the visual experience. Transparent volumes, wall coatings, fabrics and surfaces can reveal light, color or hidden optical content when driven by selected wavelengths.

  • Responsive architectural surfaces
  • Volumetric logos and light fields
  • Invisible control light → visible effects
  • Brand-specific spectral identities
LIGHT AS MATERIAL
A DIFFERENT CURING GEOMETRY

Make light inside the material.

Conventional curing is usually surface-in: the activating wavelength has to travel from the lamp through the entire resin or coating.

One IMS development path is different: use a more penetrating pump wavelength, distribute Intelligent Material through the volume, and generate the activating light locally throughout the material. That could turn curing from a surface spotlight into a three-dimensional optical field.

IR PUMPLOCAL CONVERSIONUV / BLUE OUTPUT3-D CURE FIELD
CONCEPT · LOCAL WAVELENGTH CONVERSION
WHERE IT GOES

Designed to integrate into real lighting hardware.

The opportunity is not one finished lamp. It is a materials layer that can be adapted to multiple optical architectures.

Emitter packages

Conversion material directly over or adjacent to LED and laser sources.

Films & coatings

Printable or coatable layers for conversion, scattering, extraction or spectral control.

Resins & polymers

Dispersed material for local light generation inside a curing or optical volume.

Optical surfaces

Plasmonic or patterned interfaces for coupling, beam shaping and controlled extraction.

Fixtures & systems

Complete architectures combining source, Intelligent Material, optics, sensors and controls.

$80B
+ $10BIMS INTERNAL MARKET FRAME

We use roughly $80B for general LED lighting plus $10B for specialty UV / IR / curing markets as a broad internal opportunity frame. It is not presented as a third-party audited market forecast. The addressable IMS portion would depend on where wavelength conversion, spectral control or specialized optical materials are actually adopted.

CUSTOM DEVELOPMENT

Do not start with the lamp. Start with the light you need.

Give IMS the pump wavelength, target emission, power density, temperature, lifetime, form factor and optical geometry. We can develop candidate Intelligent Material systems around the application.

Discuss a lighting program