Direct line2268688236On a telephone keypad this number reads CAN, 86, UVB, EM.CAN86EMElectromagnetic governance, encoded into the dial.
Four applications, one axis. Each governs a region of the
same spectrum — which is why they are not four businesses.
Drag the cursor to read any point on it.
The question changed
“What material should we build?”A century of chemistry, electronics and computation
“How do we govern the material we already have?”Matter as a dynamic system, not static architecture
Breakthroughs in quantum materials, condensed matter physics and spin-electric
control demonstrate that carefully engineered electromagnetic perturbations can
influence how matter behaves, revealing functional states that would otherwise
remain inaccessible.
Geophysis advances physical solutions that complement — and where
appropriate reduce reliance upon — traditional chemical interventions,
by applying fundamental physical principles to complex global challenges.
Four applications of one thesis
Different industries, one technological question: how can
engineered matter be designed to interact with electromagnetic energy in a
controlled and useful way?
SolarUV heldVisible passedSchematic: incoming solar radiation meets a governed
layer. Ultraviolet is turned back; visible light passes through.
A consumer-facing electromagnetic-management technology
designed around controlled interaction with ultraviolet radiation —
and the first demonstration that this thesis reaches an ordinary product.
SpectraDome
Visible & near-IR
SolarHeat turned backGrowth band inSchematic: incoming solar radiation meets a canopy.
The growth-useful band enters the enclosure; heat load is turned back.
An advanced ETFE greenhouse concept exploring controlled
management of incoming radiation, to create optimised agricultural
environments while addressing heat, water and food-security challenges.
GateKeeper
Solar & thermal
Solar & thermalThermal rejectedLight admittedSchematic: incoming solar and thermal energy meets a
building envelope. Thermal load is rejected; useful illumination is
admitted.
A building-envelope concept focused on managing incoming
solar and electromagnetic energy to reduce unwanted thermal loading, while
maintaining useful environmental illumination.
E.D.E.N. Enhanced Direct Energy Network
Microwave
MicrowaveCollectedSchematic: incoming microwave energy converges on an
engineered receiving structure and leaves as collected energy.
A long-term energy initiative exploring engineered
electromagnetic receiving structures and the optimisation of incoming
microwave energy — from terrestrial infrastructure to off-world systems.
The Generalized Emergence Engine
GGEE is not a single simulation program. It is an
orchestration architecture — established computational domains, each
contributing a different perspective on a complex physical problem,
coordinated toward one commercial objective.
Our objective is not to reinvent the scientific tools that
generations of researchers have already built and validated.
Our objective is to connect them.
Electronic structure
Density functional theory · Molecular dynamics
· Quantum & atomistic methods
How matter behaves at the electronic and atomic scale —
the foundation for predicting material properties and identifying promising
candidate structures.
Energy & material evolution
Energy landscapes · Phase-field modelling
· Thermodynamics
A candidate must not only have useful properties; it must
remain stable and physically realisable. These methods explore stability,
transitions, microstructure and evolution.
Transport & multiphysics
Boltzmann transport · Thermal modelling
· Finite element methods · Multiphysics simulation
Electromagnetic performance cannot be separated from heat,
charge, mechanical stress and environment, so GGEE considers coupled
behaviour rather than isolated properties.
Electromagnetic engineeringCentral domain
FDTD · RCWA · FEM · Effective medium
theory · Photonics
How materials and structures interact with electromagnetic
radiation across the relevant portions of the spectrum. This is the domain the
other five exist to serve.
The space of possible compositions, geometries, interfaces
and operating conditions is enormous. Optimisation navigates it deliberately
rather than by sequential human trial and error.
Data & knowledge
Materials databases · Scientific literature
· Simulation results · Experimental data
Existing frameworks, databases, measurements and published
research are the raw knowledge from which new engineering opportunities are
identified — leveraged, not recreated.
Orchestration
The highest-level function of GGEE is coordination. Every
cycle, the platform has to answer seven questions:
This layer is where the architecture becomes greater than
the sum of its components.
Which problem should be modelled?
Which computational method should be used?
What information should pass between methods?
Which candidate should be evaluated next?
How certain is the prediction?
What should be experimentally validated?
What result represents an IP opportunity?
From computation to IP
The objective is not to produce simulations. It is
to discover commercially meaningful configurations, materials, structures and
processes that can become proprietary technologies.
Every successful cycle expands the Geophysis
intellectual-property library, and returns a sharper question to the top.
Problem definition
Existing knowledge & database search
Candidate generation
Physics-based modelling
Electromagnetic simulation
Multiphysics validation
AI-assisted optimisation
Experimental validation
IP identification
Prototype
Commercialisation
Earth, then everywhere harder
The principles used to engineer electromagnetic materials for buildings,
agriculture and energy systems are the same ones that lunar, Martian, orbital
and deep-space infrastructure will require — under conditions that
remove every margin for error.
The opportunity is not one product. It is an expandable
architecture for generating many.
EarthBeyondSchematic: an outward path from Earth through four
waypoints, the steps widening with distance.
EarthOrbitMoonMarsBeyond
Off-world systems must manage
Solar radiation
Thermal radiation
Electromagnetic communications
Wireless energy transfer
Extreme thermal environments
Radiation exposure
Autonomous infrastructure
Resource-efficient agriculture
Advanced energy systems
An IP foundry, not a product company
Geophysis is not a manufacturer of consumer commodities. It is an intellectual
property foundry, dedicated to creating a proprietary library of high-value
electromagnetic governance technologies capable of transforming multiple global
industries.
Rather than chasing individual markets, Geophysis seeks to create the physical
frameworks upon which entire industries can evolve — deployed through
licensing partnerships.
These initiatives are not separate businesses. They are
expressions of one enduring purpose.
Intellectual Property CounselDennemeyer & AssociatesSupporting the protection and stewardship of Geophysis intellectual property.
Licensing sectors
Defence
Aerospace
Telecommunications
Energy
Infrastructure
Advanced manufacturing
Agriculture
Emerging technology
One architects the system. One integrates the physics.
GGEE is being developed through the complementary strengths of
systems architecture and advanced physics.
Dr. Rishi Khan Lead Systems Architect
Architects the computational ecosystem itself —
determining how established scientific platforms, computational methods,
databases, optimisation systems, AI and experimental workflows can operate
as one coherent discovery architecture.
Dr. Volodymyr Shatalov Lead Theoretical Physicist
Brings approximately five decades of physics research and
development to the predictive framework — the depth of physical and
mathematical perspective required to evaluate it, and to identify where
rigorous modelling can advance the system.