Jul 24, 2025 · 28m · catalyst
Repurposing EV batteries for grid storage
gold bands on the timeline = statements, start to end. Hover to read, click to jump. CC turns on captions
In this episode of Catalyst, host Shayle Kann and Redwood Materials CTO Colin Campbell explore how retired electric vehicle batteries can be efficiently tested, aggregated, and repurposed for stationary grid energy storage before undergoing mineral recycling.
How this conversation actually went
Every chapter scored 0–10 on four independent dynamics. Hover any point for the reasoning behind the score. Shayle holds 45.8% of the talking time here. How this is scored →
speaking balance: gold is Shayle, purple is the guest (3 minute bins)
Campbell pushes back against Kann's suggestion that anyone could easily plug old packs into the grid, highlighting the engineering required for heterogeneous high-power electronics.
Hardest push from Shayle ▶ 14:44 Kann probes for the core innovationKann bluntly challenges Campbell's oversimplified description of wheeling packs into a field, asking where the defensible innovation actually exists.
Biggest teaching moment ▶ 10:58 Campbell explains the additive lifecycle detourCampbell corrects the premise that recycling and grid deployment are mutually exclusive choices, explaining Redwood executes grid storage as an interim step before mineral recovery.
Shayle holds their own ▶ 25:22 Kann dissects duration economicsKann demonstrates expert knowledge of battery discharge rates and linear cost scaling for multi-hour storage, earning explicit praise from Campbell for his framing.
the scores for every segment, with the reasoning behind each
| Chapter | Topic | Shayle as informed peer | Guest teaching | Guest disagreement | Shayle pushing back | Why |
|---|---|---|---|---|---|---|
| Assessing Condition and Chemistry of Retired EV Batteries | 6 | 3 | 1 | 1 | Kann guides the discussion with solid background knowledge of battery degradation metrics and chemistry timelines. Campbell explains that EV packs usually arrive in very good condition with roughly 80% remaining capacity. | |
| The Economic Calculus of Repurposing Versus Recycling | 8 | 4 | 2 | 3 | Kann articulates a first-principles economic comparison between recycling cathode active material and grid repurposing against new LFP packs. Campbell reframes the issue by pointing out that repurposing is an additive detour before ultimate metal recovery. | |
| Engineering Integration and Redwood's Feedstock Advantage | 7 | 4 | 2 | 6 | When Campbell claims Redwood simply wheels packs into a field and plugs them in, Kann pushes back directly to demand where the actual technical innovation lies. Campbell explains the proprietary power electronics, site engineering, and software required to integrate heterogeneous packs. | |
| Forecasting Market Volume and Grid Capacity from Retired EVs | 6 | 3 | 1 | 2 | Kann presses Campbell on specific capacity figures, clarifying whether the five gigawatt-hours quoted is rated nameplate capacity or degraded available capacity. Campbell provides annual production and deployment benchmarks. | |
| Mid-Roll Sponsor Announcements: Bloom Energy, Engie, and Energy Hub | 5 | 2 | 1 | 1 | Following mid-roll sponsor reads, Kann queries how the incoming stream will be partitioned between EV packs and consumer electronics, and how LFP chemistry impacts the model. Campbell confirms their power electronics are chemistry-agnostic. | |
| Leveraging Retired Batteries for Long-Duration Energy Storage | 8 | 3 | 1 | 4 | Kann shows deep domain expertise regarding C-rate degradation and explains why lithium-ion is rarely deployed for 20-hour duration due to linear capex scaling. Campbell agrees with Kann's framing and outlines Redwood's target gigawatt-hour deployment. |