Critical Resources Appoints Eric Martinez Gurrea to Advance Spray Cooling Technology
Critical Resources Ltd (ASX: CRR) has reported a significant Critical Resources solid-state battery manufacturing breakthrough in its evaluation programme, confirming that a complete composite layer combining cathode, solid electrolyte and conductive network has been deposited in a single, dry, room-temperature step.
According to the ASX announcement dated 16 June 2026, the work was completed at the South Dakota School of Mines & Technology within the US National Science Foundation supported Centre for Solid-State Electric Power Storage (CEPS). It is being advanced as part of a licensable, solvent-free manufacturing process targeting high-density computing, data centre, defence and aerospace applications.
The result progresses from the solvent-free lithium iron phosphate (LFP) cathode work reported on 5 March 2026 and links directly to Critical Resources Ltd's proprietary Amorphous Solid-State Electrolyte (ASE), previously benchmarked at 3.2 mS cm⁻¹ ionic conductivity in the 28 May 2026 announcement.
"Depositing solid electrolyte, cathode and a carbon-nanotube conductive network in a single step, is a genuine milestone for our program. The hardest part of a solid-state battery is the join between the cathode and the electrolyte, and forming that join during manufacture rather than pressing finished parts together afterwards is exactly the kind of problem this technology is designed to solve."
"Doing it solvent-free, at room-temperature, and with an advanced carbon-nanotube network built in, points to a cleaner and simpler way of making these cells. Pairing this with our ASE electrolyte results means we are now making progress on both halves of the solid-state battery problem — the material and the manufacturing."
"This is early-stage laboratory work, not commercial manufacturing. Depositing a standalone electrolyte layer on its own is still in development, and we are working through it methodically."
— Tim Wither, Managing Director, Critical Resources Ltd
According to the announcement, the new work demonstrates that three key battery components can be formed together as one integrated layer:
Using the Dynamic Spray Deposition (DSD) process, these materials were co-deposited directly onto a battery-grade aluminium foil substrate in a single dry pass at room temperature.
Key technical outcomes reported include:
No solvents, binders, drying ovens or high-temperature furnaces were used in the process.
The LLZO electrolyte deployed here is described as a reference material chosen to validate the DSD method. It is, furthermore, separate from Critical Resources Ltd's ASE material, which is planned to be integrated into the DSD process in a later step.
To understand the significance of this Critical Resources solid-state battery manufacturing breakthrough, it is useful to outline the key differences between conventional lithium-ion cells and solid-state designs.
A typical lithium-ion battery uses:
In these cells, the liquid electrolyte and separator add weight and volume. The flammable liquid component can, moreover, contribute to thermal runaway and fire under abuse or failure conditions.
A solid-state battery replaces the liquid electrolyte and separator with a solid electrolyte. This solid material carries lithium ions while also acting as a physical barrier between electrodes.
Key potential attributes of the solid-state architecture, as outlined in the announcement, include:
| Attribute | Conventional Lithium-Ion | Solid-State Design (Technology Class) |
|---|---|---|
| Energy density | Lower potential due to bulky separator and liquid volume | Higher potential with more usable energy per kg and litre |
| Safety | Flammable liquid electrolyte with thermal runaway risk | No flammable liquid, reducing thermal runaway pathways |
| Operating temperature | Narrower range, performance declines in heat or cold | Wider range, more stable over temperature extremes |
The announcement explicitly notes that these are potential characteristics of the solid-state technology class and are not performance results demonstrated by Critical Resources Ltd at this stage. Achieving such performance at commercial scale depends on solving the manufacturing challenge, which is the core focus of the current programme.
According to Critical Resources Ltd, solid-state architectures are being targeted because they may be suited to:
The company highlights thermal stability, non-flammable chemistry, high energy density and wide operating temperature range as attributes being pursued within its solid-state battery evaluation work, in line with requirements emerging in these markets.
Dynamic Spray Deposition is described in the announcement as a dry, room-temperature spray process where prepared powder materials are accelerated onto a substrate in a single pass.
In this programme, DSD is used to:
The process is highlighted as solvent-free and low-temperature, reducing reliance on solvent purchase and disposal, large drying lines, and high-temperature processing equipment. It is also considered potentially capital- and energy-efficient, given the reduction in process stages.
Critical Resources Ltd notes that DSD is being evaluated as a licensable manufacturing pathway, rather than a production line the company would own.
The announcement identifies several reasons this co-deposition result is considered important from a technical and commercial perspective:
From an investor perspective, the company emphasises that battery chemistry performance has to be matched with manufacturability. The DSD result is presented as an example of how Critical Resources Ltd is attempting to de-risk licensable intellectual property rather than committing capital to plant and equipment.
The announcement places specific focus on the carbon-nanotube aspect of the composite. Carbon nanotubes (CNTs) are described as cylinders of carbon atoms, roughly a few thousand times thinner than a human hair, that are highly electrically conductive and mechanically strong.
In battery electrodes, CNTs can act as a lightweight electronic highway, moving electrons efficiently while using less carbon by weight than traditional additives.
In the DSD composite layer:
Embedding this conductive network during a single dry fabrication step, rather than mixing it into a wet slurry for later drying, is presented as part of the advanced materials engineering underpinning the process IP that Critical Resources Ltd is seeking to license.
The solid-state battery evaluation programme is structured around two main technical workstreams, which the announcement describes as complementary rather than independent.
| Workstream | Focus | Key Status (as Reported) |
|---|---|---|
| ASE electrolyte (materials) | Ionic conductivity and stability of the Amorphous Solid-State Electrolyte | 3.2 mS cm⁻¹ conductivity achieved in first-pass, unoptimised composition |
| DSD (manufacturing) | Solvent-free, low-temperature cathode and electrolyte fabrication | Single-step composite (cathode + LLZO + CNT) deposited and under electrochemical test |
The 16 June 2026 announcement is positioned as a connection point between these streams because it demonstrates that a solid electrolyte material (LLZO) can be incorporated into a composite using DSD. Future steps are planned to move from this LLZO reference material to Critical Resources Ltd's proprietary ASE and a high-temperature solid-state electrolyte (HTE) covered by an existing US patent.
The announcement provides a concise progress snapshot and outlines defined next activities within the CEPS evaluation framework.
| Stage | Workstream | Status |
|---|---|---|
| Electrolyte material benchmarked (ionic conductivity and stability) | ASE | Complete |
| Single-step composite layer deposited (LFP + LLZO + CNT) | DSD | Complete |
| Coin cell electrochemical baseline testing (with liquid reference electrolyte) | DSD | In progress |
| Full-format pouch cell prototype development | DSD + benchmark electrolyte | Next |
| Independent testing of pouch cell | DSD + benchmark electrolyte | Next |
| Full solid-state cell integrating ASE and HTE with DSD | ASE + DSD | Planned |
Coin cell electrochemical testing has commenced using a liquid electrolyte as a known reference, which is described as standard practice at this stage. Early results show charge and discharge behaviour consistent with the cathode and electrolyte materials performing as expected, with full characterisation still underway.
According to the announcement, key upcoming activities include:
These steps are described as laboratory-stage technical gates designed to de-risk the solvent-free manufacturing concept without implying commercial-scale manufacturing at this point.
Critical Resources Ltd is not positioning itself as a future battery manufacturer. Instead, the company's stated model is to develop and license battery and manufacturing-process intellectual property.
Key IP-related points from the announcement include:
The announcement also notes that dry, solvent-free fabrication has independently emerged as a preferred architecture in advanced aerospace battery programmes, citing NASA's SABERS programme (Solid-state Architecture Batteries for Enhanced Rechargeability and Safety) as one example of an initiative adopting a similar dry-process principle.
From an investor viewpoint, the company highlights that every validated step strengthens the licensable IP position and potentially widens future partnership and licensing options across defence, industrial and high-reliability infrastructure markets.
In parallel with this technology programme, Critical Resources Ltd continues to hold the Mavis Lake Lithium Project in Ontario, Canada, the Halls Peak Base Metals Project in New South Wales, and a growing gold portfolio in New Zealand. These resource assets provide commodity exposure alongside the solid-state battery IP strategy.
For investors following the ASX resources and technology space, the 16 June 2026 update on this Critical Resources solid-state battery manufacturing breakthrough highlights several factors:
Consequently, the next catalysts to watch include completion of coin cell characterisation, fabrication of a full-format DSD pouch cell, and subsequent independent testing, alongside ongoing integration of the ASE electrolyte with the DSD manufacturing route.
Critical Resources Ltd (ASX: CRR) is advancing a licensing-focused solid-state battery IP strategy that combines proprietary electrolyte materials with a solvent-free manufacturing process — all from within a US National Science Foundation supported research centre. With structured technical milestones ahead, including full-format pouch cell development and ASE electrolyte integration, this is a programme worth watching closely. To explore the company's projects and investment case in more detail, visit the Critical Resources website.