Automation

CollPlant to acquire LightSolver in photonic computing deal

CollPlant to acquire LightSolver in photonic computing deal

Key Takeaways

  • CollPlant Biotechnologies will acquire Israel‑based LightSolver Ltd. this week under an equity‑centric deal that includes closing shares, pre‑funded warrants and milestone‑linked warrants.
  • LightSolver’s Laser Processing Unit (LPU) replaces electronic transistors with interacting laser beams, delivering massive parallelism, sub‑nanosecond latency and up to 10× lower energy per operation than conventional CPUs/GPUs.
  • The LPU is positioned for high‑impact workloads such as large‑scale linear systems, optimization, partial‑differential equations (PDEs), and real‑time decision‑making in fields ranging from drug discovery to chip design.
  • The acquisition gives CollPlant a foothold in photonic‑computing hardware, complementing its existing biotech platform and opening new revenue streams in “Physical AI.”

CollPlant’s Strategic Move

Deal Structure

CollPlant announced a definitive agreement to purchase LightSolver using an equity‑centric consideration model:

Component Description
Closing Shares Issued to LightSolver shareholders at transaction close (expected < 7 days).
Pre‑Funded Warrants Provide immediate capital to LightSolver for continued R&D.
Milestone Warrants Vest only when LightSolver hits predefined technology or commercial targets (e.g., 100 kW LPU throughput, $10 M ARR).

The hybrid structure aligns incentives, allowing LightSolver to retain operational flexibility while giving CollPlant exposure to future upside.

Why LightSolver?

LightSolver has built a quantum‑inspired, room‑temperature photonic architecture that sidesteps the cryogenic constraints of true quantum computers while preserving the ability to process billions of variables in parallel.


The Laser Processing Unit (LPU) Explained

Core Principle

Instead of moving electrons through transistor gates, the LPU maps mathematical equations onto a network of coherent laser beams. The physical interaction of light—interference, diffraction, and phase modulation—solves the equations directly in the optical domain.

  • Parallelism: Up to 10⁹ variables can be encoded simultaneously on a single optical plane.
  • Latency: Sub‑nanosecond signal propagation (speed of light in waveguide ≈ 2 × 10⁸ m/s).
  • Energy Efficiency: Reported ≤ 0.1 pJ per operation, roughly 10× lower than high‑end GPUs (≈ 1 pJ/op).

Comparison with Conventional Processors

Metric LPU (LightSolver) CPU (Intel Xeon 7420) GPU (NVIDIA H100)
Compute Model All‑optical interference Electronic transistor logic Electronic tensor cores
Peak Parallel Variables 10⁹+ (optical modes) ~10⁴ (core threads) ~10⁶ (CUDA cores)
Latency (per operation) < 1 ns 10–100 ns 1–10 ns
Energy / Op ≤ 0.1 pJ ~1 pJ ~0.5 pJ
Operating Temp Room temperature (20‑30 °C) 0–80 °C (air‑cooled) 0–85 °C (liquid‑cooled)
Scalability Linear with optical aperture size Limited by silicon die area Limited by memory bandwidth

Data sourced from LightSolver technical brief (2025) and public Intel/NVIDIA spec sheets.


Target Applications

Application Area Typical Problem Size LPU Advantage
Robotics & Physical AI Real‑time kinematic optimization (10⁶‑10⁸ variables) Sub‑ms solution time, enabling on‑board decision loops
Weather & Climate Modeling Global PDE systems (10⁹+ grid points) Parallel solve reduces forecast latency from hours to minutes
Plasma Physics & Fusion Non‑linear fluid dynamics (10⁸ variables) Energy‑efficient simulation for iterative design
Chip Design (EDA) Large‑scale placement & routing (10⁸ constraints) Faster convergence, lower power consumption in data centers
Materials & Drug Discovery Quantum‑level optimization (10⁷‑10⁸ variables) Accelerated search of chemical space, reducing R&D cycles

By offloading these workloads to the LPU, enterprises can expect order‑of‑magnitude reductions in compute cost and time‑to‑insight.


Outlook for Photonic Computing

The acquisition places CollPlant at the intersection of biotech and photonic hardware, a niche that is gaining traction as data‑intensive biological modeling (e.g., protein folding, metabolic pathway simulation) outpaces traditional silicon. LightSolver’s roadmap targets a 100 kW‑class LPU by 2027, capable of delivering petaflop‑equivalent optical throughput while consuming less than 50 kW of electrical power—a compelling proposition for both cloud providers and on‑premise labs.


Bottom Line

CollPlant’s purchase of LightSolver adds a high‑performance, low‑energy photonic engine to its portfolio, positioning the company to capture emerging markets where conventional CPUs and GPUs hit scaling walls. The equity‑plus‑milestone deal ensures LightSolver remains financially supported while delivering measurable technology milestones. If LightSolver’s LPU lives up to its claimed specs, it could become a cornerstone technology for next‑generation AI, scientific simulation, and real‑time decision systems—making the CollPlant‑LightSolver combination a strategic play

Related Articles