ENERGY · HYDROGEN PRODUCTION

Use infrared light
to drive chemistry.

Many photocatalysts respond mainly to UV or visible light. Intelligent Material can be engineered to absorb near-infrared light and re-emit higher-energy light at the catalyst, creating a route to use a broader portion of the optical spectrum for hydrogen-producing photochemistry.

HOW IT WORKSInfrared light the catalyst cannot use, converted into light it can.WATER980 nm IRcatalystH₂H₂H₂H₂① Near-infrared indeep, low-energy light② Crystal converts itinto visible / UV locally③ Catalyst makes H₂water split by photochemistry
PHOTOCATALYTIC ENERGY CONVERSION

Put the wavelength the catalyst needs exactly where the reaction happens.

IMS materials can act as local optical converters. They absorb lower-energy near-infrared excitation and generate shorter-wavelength emission that can activate a nearby photocatalyst.

That creates a modular architecture: one material manages the incoming light; another material performs the chemistry. The two can be coupled as neighboring particles, core/shell structures, films or other heterostructures depending on the catalyst system.

The concept is relevant to photoreforming of alcohols for hydrogen generation, water-related photo-redox chemistry and other light-driven catalytic reactions.

01 · Spectrum

Harvest beyond the catalyst's native window.

Use near-infrared excitation that a conventional photocatalyst may not absorb directly, then convert it to useful visible or UV emission.

02 · Interface

Couple conversion and catalysis.

Place the light-converting crystal near or within the photocatalyst architecture to shorten the optical path between emission and reaction.

03 · Engineering

Tune the emitted wavelength.

Adjust host lattice, rare-earth combination, concentration, particle size and morphology to target the absorption band of the catalyst.

04 · Enhancement

Manage the local optical field.

Use core/shell structures, spacers, plasmonic components or resonant structures when they improve excitation while limiting quenching.

THE REACTION PATH

Light conversion first. Chemistry second.

Separating those functions gives catalyst developers another design variable. The Intelligent Material does not need to be the catalyst itself; it can be the optical engine that feeds the catalyst the wavelength it needs.

01 · Excitation

Near-infrared light enters.

Choose an excitation wavelength that penetrates the reactor geometry and is absorbed by the engineered crystal.

→
02 · Conversion

The crystal shifts the energy.

Rare-earth energy-transfer pathways generate visible or ultraviolet emission matched to the catalyst response.

→
03 · Reaction

The photocatalyst does the chemistry.

Converted photons activate the catalytic system for hydrogen production or another targeted photochemical transformation.

CUSTOM CATALYST SUPPORT

Design the crystal around the photocatalyst.

A practical program starts with the catalyst, the reaction and the available light source. IMS can then develop candidate materials around those constraints rather than forcing the catalyst to fit an off-the-shelf crystal.

This is a materials-development platform. Hydrogen yield and reactor performance depend on the complete photocatalyst, reactor geometry, mass transport and illumination system, so performance should be validated at the full-system level.
ExcitationNIR/IR wavelength, irradiance, continuous or pulsed operation.
EmissionVisible or UV output aligned with the catalyst's absorption band.
Particle designHost, dopants, size, shape, phase, core/shell and spacer thickness.
Surface chemistryDispersibility, catalyst attachment, aqueous or nonpolar environments.
ArchitectureSeparate particles, coated particles, heterostructures, films or reactor supports.
MeasurementOptical conversion, catalyst activation, reaction rate, stability and recyclability.
ENERGY APPLICATIONS

Three different ways to engineer energy and information.

Hydrogen production is the photochemistry branch. The adjacent energy pages focus on photovoltaic spectral conversion and subsurface hydrocarbon discovery.

Bring us the catalyst and the wavelength problem.

IMS can develop custom Intelligent Material candidates for photocatalysis, photoreforming and other light-driven chemical systems.

Work with IMS