Original News Release
Quebec Innovative finds third hydrogen zone in N.S.
Mr. John Karagiannidis reports
QUEBEC INNOVATIVE MATERIALS CORP. (QIMC) CONFIRMS THIRD MAJOR NATURAL HYDROGEN DISCOVERY IN NOVA SCOTIA WITH SOIL-GAS RESULTS UP TO 4,125 PPM
Quebec Innovative Materials Corp. has discovered a third major clean hydrogen zone in Nova Scotia. Soil-gas surveys conducted in the Southampton and East-Southampton areas returned 23 samples above 500 parts per million hydrogen, of which eight exceeded 1,000 ppm, including a peak value of 4,125 ppm -- one of the highest concentrations recorded by the company in the province to date.
"The confirmation of a third hydrogen zone in Nova Scotia, with 23 samples above 500 ppm, including eight over 1,000 ppm and a peak of 4,125 ppm, represents a transformative step for QIMC. Each new anomalous zone further validates our thesis that the Cumberland basin is one of the most promising natural hydrogen districts in North America. Importantly, geology shows deformation and folding of rocks between the features that present strong similarities with the Carboniferous basin of Lorraine in Europe. In both cases, we are in a Carboniferous basin containing continental sedimentary rocks, including coal rocks, among others. With the integration of seismic data into our exploration model, QIMC is positioned -- alongside Nova Scotia -- at the forefront of clean hydrogen development," said John Karagiannidis, president and chief executive officer of Quebec Innovative.
This latest discovery zone builds on Quebec Innovative's previously announced results at West Advocate and Eastern Advocate, further confirming Nova Scotia's Cumberland basin as one of North America's most promising emerging natural hydrogen hubs. With three major zones confirmed, the Quebec Innovative and INRS teams are expanding their phase 2 and phase 3 programs in these areas.
"Following recent meetings with our partners, we are also evaluating the next phase of development, which includes the integration of ammonia production into our model, leveraging Nova Scotia's existing infrastructure and port facilities," added Mr. Karagiannidis.
Geological context of Southampton
The geomorphological and geological contexts of the Southampton area are markedly different from those of the tectonized zone of the Cobequid highlands in the Advocate and West Advocate areas. As a result, the discovery of a new hydrogen anomalous domain in the Southampton area is noteworthy and must be interpreted in terms of geological characteristics specific to the Cumberland Carboniferous basin.
Prof. Marc Richer-Lafleche (INRS) commented: "The Southampton anomalies highlight a structural and geological setting distinct from Advocate. Here, we are working within a Carboniferous basin environment, which provides a unique context for hydrogen migration and accumulation."
Structural controls and basin setting
As shown on the elevation data map, hydrogen soil-gas anomalies are located on a lower elevation plateau north of the Cobequid highlands. This topography is influenced by a regional fault system separating the Carboniferous domains of the Cumberland basin to the north (Pennsylvanian sedimentary rocks) from the older granitic and Neoproterozoic volcanic-sedimentary terrains of the Jeffers group to the south.
This geological contrast is clearly expressed by a magnetic high on Nova Scotia's regional aeromagnetic map. On a local scale, magnetic and gravimetric surveys show low-potential field values, which encompass most of the highest hydrogen anomalies observed. Such zones typically indicate a thickening of sedimentary sequences in basins.
Seismic data integration
Seismic reflection data, reprocessed by the Geological Survey of Canada (Durling, 2023), underline the importance of the Athol syncline, which reaches a depth of approximately five kilometres beneath the anomalous Southampton sector. This section also shows the presence of at least four south-dipping faults.
In Quebec Innovative's exploration model, these faults act as migration conduits, promoting the upward movement of hydrogen to surface soils.
Prof. Richer-Lafleche added: "The seismic integration is critical. It shows the geometry of the basin, the depth of the Athol syncline and the role of fault systems that facilitate hydrogen migration. This structural picture strengthens our confidence in the Southampton anomalies."
Lithological associations
The highest hydrogen concentrations were observed over the Carboniferous ragged reef formation, composed of alternating fluvial sandstones, conglomerates, mudstones, lacustrine limestones and rare coal horizons. In contrast, soils overlying the Malagash formation did not display hydrogen anomalies.
Structurally, the strongest anomalies coincide with zones affected by secondary south-dipping faults trending east-west to west-northwest/east-southeast. These features appear to intersect a subvertical strike-slip fault along the southern margin of the Cumberland basin at the foot of the Cobequid uplands.
Conceptually, this geological and structural framework suggests hydrogen formation results from groundwater infiltration into south-dipping faults and reactions at depth with igneous rocks of the Cobequid highlands. The well-documented high geothermal gradient of the Cumberland basin acts as a catalyst for such hydrogen-producing processes.
Analytical results from the soil-gas surveys in the Southampton and East-Southampton areas
The work was carried out from Aug. 2 to Aug. 11, 2025, under sunny weather conditions that were particularly favourable for the collection of soil-gas samples (average temperature of 29.9 C, average atmospheric pressure of 1,047 hectopascals and average relative humidity of 35.9 per cent). A total of 318 samples were collected from six sections totalizing 28.6 kilometres along public roads of Southampton and East-Southampton.
The mean and median hydrogen concentrations measured in the soils of this sector are particularly variable.
Prof. Richer-Lafleche concluded, "The Southampton results, with values up to 4,215 ppm, align with our exploration model and underscore the potential of the Cumberland basin to host multiple hydrogen-rich domains."
About Prof. Marc Richer-LaFleche, PGeo
Prof. Richer-Lafleche, a qualified expert in hydrogen exploration, has reviewed, read and approved the technical content presented in this press release. Prof. Richer-Lafleche confirms that the methodologies employed, data presented and interpretations made conform to current industry practices and standards relating to hydrogen exploration.
About Quebec Innovative Materials Corp.
Quebec Innovative is a mineral exploration and development company dedicated to exploring and harnessing the potential of North America's abundant resources. With properties in Ontario, Quebec, Nova Scotia and Minnesota (United States), Quebec Innovative is focused on specializing in the exploration of white (natural) hydrogen and high-grade silica deposits. Quebec Innovative is committed to sustainable practices and innovation. With a focus on environmental stewardship and cutting-edge extraction technology, it aims to unlock the full potential of these materials to drive forward clean energy solutions to power the artificial intelligence and carbon-neutral economy and contribute to a more sustainable future.
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