Why Hydrogen The science

A new approach
to hydrogen

What geological hydrogen is, how it forms, and why it matters.

TrapH₂ source
What it is

Geological hydrogen (natural hydrogen) is hydrogen gas generated within the Earth.

How it forms

Geological hydrogen system

When water reacts with iron-rich rock deep in the crust, a reaction known as serpentinization can release hydrogen gas. Serpentinization is a natural chemical reaction between water and certain iron-bearing rocks, and it runs continuously over geological time. Where fault systems, fractures in the Earth’s crust, channel that gas upward into sealed rock formations called traps, the hydrogen can accumulate much the way conventional natural gas does. Drill the trap, produce the gas. When the hydrogen is used, the primary emission is water.

Once viewed mainly as a deep-ocean phenomenon, geological hydrogen generation is now increasingly recognised in land-based geological systems worldwide.

How it's captured
01
Water meets iron-rich rock deep in the crust
02
Serpentinization releases hydrogen gas
03
Faults channel the gas upward
04
Sealed traps let it accumulate

Drill the trap, produce the gas. When the hydrogen is used, the primary emission is water.

Where it could sit on the cost curve

Independent literature estimates place geological hydrogen at a materially lower potential production cost than grey hydrogen (made from natural gas, roughly US$1 to US$2 per kg) or green hydrogen (made by splitting water with electricity, roughly US$3 to US$8 per kg), at potentially under US$1 per kg.

Indicative production cost by source (US$ per kg)

Geological H₂
emerging
< $1 / kg
Grey H₂
from natural gas
$1–2 / kg
Green H₂
electrolysis
$3–8 / kg
$0
$2
$4
$6
$8
These are independent estimates for the resource type, presented as sector context. They are not Luma production costs. Because hydrogen is a commodity, a low-cost source matters, and early movers enter at the lowest-priced point on the cost curve.

Geological hydrogen remains an emerging resource, not a proven commercial industry. Outside one long-running site in Mali, it has not been produced commercially at scale. That is both the promise and the early-stage risk.

Helium upside

Helium is often found alongside geological hydrogen. Luma intends to test for both hydrogen and helium on its Atlantic Canada projects.

The science behind the field

Geological hydrogen research is led by government and academic institutions, including the United States Geological Survey and Stanford University’s geological hydrogen research program. Dr. Allegra Hosford Scheirer Ph.D. is Luma’s technical consultant and a recognised authority from that field; her background is described on the Leadership page.

These references reflect her career and do not imply that any institution endorses Luma.
Nova Scotia · Atlantic Canada