True Photonic®

Logic-in-Light™ · Clean Compute Centers · Licensing & Programs

Computing
on Light

A conventional processor works by pushing electric current through billions of transistors to make them change state. Every one of those state changes deposits heat. True Photonic changes state with light.

Time to change state

Logarithmic · Gold band = independently measured range

1 fs
10 fs
100 fs
1 ps
10 ps
100 ps
1 ns
150–200 fs POOVEY SWITCH · TECHNION

The operational regime of a conventional processor — clock period, memory access, the latency a computation actually experiences.

The range came off a test series at the Technion Israel Institute of Technology, measured by pump-probe spectroscopy. A range from a test series is a finding, and the range is the value. This is the only performance figure on this site that has been measured rather than modeled.

150–200fsIndependently measured state change, Technion Israel Institute of Technology
25Patent applications filed across the photonic estate
800+Claims
12Industries mapped first, with more extending from the same floor

Our purpose

To put the world's computing on light — on fabs that already exist, in buildings already standing, and without the water.

What we build

A switch, a set of gates, and everything built on top.

Two things had to be invented: a switch that changes state with light, and a family of logic gates built from those switches. The architecture, the fabrication strategy, and the compute centers all follow from what those two do and what they stop doing.

The element

The Poovey Switch

Dr. Gary Poovey's switch changes state with light rather than with electric current. Measured independently at the Technion Israel Institute of Technology by pump-probe spectroscopy, that state change takes 150 to 200 femtoseconds.

Because nothing is pushed through a channel to make the state change happen, the switch does not deposit the heat a transistor deposits. That is the step that lets everything downstream of it work differently.

Read the technology brief →
150–200 fsMeasured state change
Pump-probeIndependent laboratory method
The logic

The optical gate family

We speak most about the switch, because the switch is what replaces the transistor. Those skilled in the art know that a switch on its own is insufficient to build a computer.

True Photonic holds the intellectual property for an entire Boolean gate family in the optical domain: NAND, OR, XOR, flip-flop, and the rest. Existing logic designs and topologies map across to it rather than being reinvented from scratch.

Read about the gate family →
Full Boolean familyNAND, OR, XOR, flip-flop
One to oneAgainst transistor gate equivalents
The machine

Logic-in-Light

Photonic servers built from the switch, fabricated at mature 90 to 180 nanometer process geometry. No extreme ultraviolet lithography, no leading-edge allocation, and no dependency on the handful of fabs in the world that can do either. Capacity at those nodes is abundant, largely depreciated, geographically distributed, and domestic.

Clock frequency is a choice we are proving rather than a specification we are stuck with: whether the architecture holds its throughput at one gigahertz is one of the questions the demonstrator answers.

Read the architecture brief →
90–180 nmRelaxed Lithography™ process geometry
No EUVFabricable on capacity that already exists
The site

Clean Compute Centers

A photonic compute floor needs no cooling plant, no cooling water, no dedicated substation, and no place in an interconnect queue. The load divides near rack scale, so it can be fitted across the electrical panels and floors a building already has rather than requiring service built to match it.

That is what lets compute sit inside the commercial buildings standing empty in American downtowns, near the people and the workloads it serves.

Explore Clean Compute Centers →
~90% less energyModeled, at facility scale
ZeroCooling water

Our proof standard

What has been measured, and what has not.

Our chief technical officer would rather answer after the testbed measures it. We would rather publish his floor than our ceiling. Every figure we put in front of a counterparty carries the tier it belongs to, and we do not move a number up a tier because a room wants it there.

Measured

  • Switch state change150–200 femtoseconds, Technion Israel Institute of Technology, pump-probe spectroscopy

Modeled

  • Facility energyRoughly a tenth of conventional draw, at facility scale
  • Build economicsBottom-up from per-unit manufacturing cost, published when manufacturing at volume supports it

Under test — 2026

  • 64-bit demonstratorAn operating photonic computer under an independent meter
  • Clock decouplingWhether throughput holds as clock frequency comes down
  • Energy to solutionThe same work, measured against the electricity it took

Where it lands

Twelve industries mapped first.

One switch, one substrate, and one fabrication strategy sit underneath all of them. The map keeps extending.

Each cell links to its Industry View report. Volume numbers follow the series; display order leads with Clean Compute Centers.

Publishing

First Light™

Our research, publishing and community arm. Industry View reports, a book, a community, and near-daily writing that works through what a photonic floor changes underneath each industry.