Oct 6, 2022 · 35m · catalyst

How well does soil actually store carbon?

Eric Slesserev · 21m spoken Shayle Kann · 8m spoken
0:00 / 0:00

gold bands on the timeline = statements, start to end. Hover to read, click to jump. CC turns on captions

Host Shayle Kann and soil scientist Dr. Eric Slesserev explore the fundamental biophysical science of soil carbon storage, evaluating the permanence constraints of regenerative agriculture and the critical verification hurdles facing soil carbon credit markets.

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 27.1% of the talking time here. How this is scored →

Shayle as informed peer 4.3 Guest teaching 6.3 Guest disagreement 1.2 Shayle pushing back 0.7
05100:0010:0020:0030:002:41–11:56 · Shayle as informed peer 5/10 Natural Carbon Cycles and Historical Agricultural Disruption Kann establishes the conceptual framework of human agricultural disruption to the natural carbon cycle. Slesserev delivers an extensive overview of microbial respiration, plant exudates, and soil erosion dynamics.11:57–15:54 · Shayle as informed peer 4/10 Enhanced Rock Weathering and Inorganic Carbon Sequestration Kann guides the conversation toward enhanced rock weathering and inorganic sequestration mechanisms. Slesserev explains mineral dissolution, cation release, and bicarbonate formation in long-term carbon storage.15:55–18:50 · Shayle as informed peer 4/10 Regenerative Agriculture Practices and Carbon Permanence Limits Kann groups regenerative practices such as cover cropping and no-till to evaluate their climate mitigation efficacy. Slesserev notes that these practices were originally designed for agronomic fertility and cautions that microbial breakdown limits their permanence.18:53–25:11 · Shayle as informed peer 6/10 Sponsor Messages: Bloom Energy and Engie Kann demonstrates domain knowledge by delineating additionality and volume uncertainty from contractual durability risks. Slesserev explains that additionality challenges dwarf measurement hurdles, highlighting sampling depth flaws where no-till can cause deep carbon loss.25:11–29:08 · Shayle as informed peer 3/10 New Frontiers: Mineral Interactions and Soil Carbon Persistence Kann prompts Slesserev on emerging scientific frontiers. Slesserev provides an in-depth breakdown of the paradigm shift away from inherent chemical recalcitrance toward mineral-surface stabilization and organo-metal precipitates.29:09–34:30 · Shayle as informed peer 4/10 The Evolution and Flaws of Soil Carbon Modeling Kann asks how soil carbon modeling supports baseline projections. Slesserev details how widely used first-order linear decay models are mathematically outdated because they fail to account for microbial explicit dynamics and saturation limits.2:41–11:56 · Guest teaching 6/10 Natural Carbon Cycles and Historical Agricultural Disruption Kann establishes the conceptual framework of human agricultural disruption to the natural carbon cycle. Slesserev delivers an extensive overview of microbial respiration, plant exudates, and soil erosion dynamics.11:57–15:54 · Guest teaching 6/10 Enhanced Rock Weathering and Inorganic Carbon Sequestration Kann guides the conversation toward enhanced rock weathering and inorganic sequestration mechanisms. Slesserev explains mineral dissolution, cation release, and bicarbonate formation in long-term carbon storage.15:55–18:50 · Guest teaching 6/10 Regenerative Agriculture Practices and Carbon Permanence Limits Kann groups regenerative practices such as cover cropping and no-till to evaluate their climate mitigation efficacy. Slesserev notes that these practices were originally designed for agronomic fertility and cautions that microbial breakdown limits their permanence.18:53–25:11 · Guest teaching 6/10 Sponsor Messages: Bloom Energy and Engie Kann demonstrates domain knowledge by delineating additionality and volume uncertainty from contractual durability risks. Slesserev explains that additionality challenges dwarf measurement hurdles, highlighting sampling depth flaws where no-till can cause deep carbon loss.25:11–29:08 · Guest teaching 7/10 New Frontiers: Mineral Interactions and Soil Carbon Persistence Kann prompts Slesserev on emerging scientific frontiers. Slesserev provides an in-depth breakdown of the paradigm shift away from inherent chemical recalcitrance toward mineral-surface stabilization and organo-metal precipitates.29:09–34:30 · Guest teaching 7/10 The Evolution and Flaws of Soil Carbon Modeling Kann asks how soil carbon modeling supports baseline projections. Slesserev details how widely used first-order linear decay models are mathematically outdated because they fail to account for microbial explicit dynamics and saturation limits.2:41–11:56 · Guest disagreement 1/10 Natural Carbon Cycles and Historical Agricultural Disruption Kann establishes the conceptual framework of human agricultural disruption to the natural carbon cycle. Slesserev delivers an extensive overview of microbial respiration, plant exudates, and soil erosion dynamics.11:57–15:54 · Guest disagreement 1/10 Enhanced Rock Weathering and Inorganic Carbon Sequestration Kann guides the conversation toward enhanced rock weathering and inorganic sequestration mechanisms. Slesserev explains mineral dissolution, cation release, and bicarbonate formation in long-term carbon storage.15:55–18:50 · Guest disagreement 1/10 Regenerative Agriculture Practices and Carbon Permanence Limits Kann groups regenerative practices such as cover cropping and no-till to evaluate their climate mitigation efficacy. Slesserev notes that these practices were originally designed for agronomic fertility and cautions that microbial breakdown limits their permanence.18:53–25:11 · Guest disagreement 2/10 Sponsor Messages: Bloom Energy and Engie Kann demonstrates domain knowledge by delineating additionality and volume uncertainty from contractual durability risks. Slesserev explains that additionality challenges dwarf measurement hurdles, highlighting sampling depth flaws where no-till can cause deep carbon loss.25:11–29:08 · Guest disagreement 1/10 New Frontiers: Mineral Interactions and Soil Carbon Persistence Kann prompts Slesserev on emerging scientific frontiers. Slesserev provides an in-depth breakdown of the paradigm shift away from inherent chemical recalcitrance toward mineral-surface stabilization and organo-metal precipitates.29:09–34:30 · Guest disagreement 1/10 The Evolution and Flaws of Soil Carbon Modeling Kann asks how soil carbon modeling supports baseline projections. Slesserev details how widely used first-order linear decay models are mathematically outdated because they fail to account for microbial explicit dynamics and saturation limits.2:41–11:56 · Shayle pushing back 1/10 Natural Carbon Cycles and Historical Agricultural Disruption Kann establishes the conceptual framework of human agricultural disruption to the natural carbon cycle. Slesserev delivers an extensive overview of microbial respiration, plant exudates, and soil erosion dynamics.11:57–15:54 · Shayle pushing back 1/10 Enhanced Rock Weathering and Inorganic Carbon Sequestration Kann guides the conversation toward enhanced rock weathering and inorganic sequestration mechanisms. Slesserev explains mineral dissolution, cation release, and bicarbonate formation in long-term carbon storage.15:55–18:50 · Shayle pushing back 1/10 Regenerative Agriculture Practices and Carbon Permanence Limits Kann groups regenerative practices such as cover cropping and no-till to evaluate their climate mitigation efficacy. Slesserev notes that these practices were originally designed for agronomic fertility and cautions that microbial breakdown limits their permanence.18:53–25:11 · Shayle pushing back 1/10 Sponsor Messages: Bloom Energy and Engie Kann demonstrates domain knowledge by delineating additionality and volume uncertainty from contractual durability risks. Slesserev explains that additionality challenges dwarf measurement hurdles, highlighting sampling depth flaws where no-till can cause deep carbon loss.25:11–29:08 · Shayle pushing back 0/10 New Frontiers: Mineral Interactions and Soil Carbon Persistence Kann prompts Slesserev on emerging scientific frontiers. Slesserev provides an in-depth breakdown of the paradigm shift away from inherent chemical recalcitrance toward mineral-surface stabilization and organo-metal precipitates.29:09–34:30 · Shayle pushing back 0/10 The Evolution and Flaws of Soil Carbon Modeling Kann asks how soil carbon modeling supports baseline projections. Slesserev details how widely used first-order linear decay models are mathematically outdated because they fail to account for microbial explicit dynamics and saturation limits.

speaking balance: gold is Shayle, purple is the guest (3 minute bins)

0:00 · Shayle 29.7% · guest 70.3%0:00 · Shayle 29.7% · guest 70.3%3:00 · Shayle 76.2% · guest 23.8%3:00 · Shayle 76.2% · guest 23.8%6:00 · Shayle 9.6% · guest 90.4%6:00 · Shayle 9.6% · guest 90.4%9:00 · Shayle 38.1% · guest 61.9%9:00 · Shayle 38.1% · guest 61.9%12:00 · Shayle 19.5% · guest 80.5%12:00 · Shayle 19.5% · guest 80.5%15:00 · Shayle 24.2% · guest 75.8%15:00 · Shayle 24.2% · guest 75.8%18:00 · Shayle 26.7% · guest 73.3%18:00 · Shayle 26.7% · guest 73.3%21:00 · Shayle 20.7% · guest 79.3%21:00 · Shayle 20.7% · guest 79.3%24:00 · Shayle 21% · guest 79%24:00 · Shayle 21% · guest 79%27:00 · Shayle 13.7% · guest 86.3%27:00 · Shayle 13.7% · guest 86.3%30:00 · Shayle 0% · guest 100%30:00 · Shayle 0% · guest 100%33:00 · Shayle 48.9% · guest 51.1%33:00 · Shayle 48.9% · guest 51.1%
Sharpest disagreement ▶ 21:37 Additionality dwarfs measurement debates

Slesserev counters the scientific obsession with measurement methodologies by arguing that additionality is the true elephant in the room that swamps technical monitoring concerns.

Hardest push from Shayle ▶ 14:58 Interjecting to clarify durability terminology

Kann jumps in to pin down Slesserev's scientific phrasing, ensuring stability is directly defined as carbon durability and residence time.

Biggest teaching moment ▶ 23:10 No-till sampling depth blindspot

Slesserev explains that conventional 30-centimeter soil sampling regimes fail to capture deep carbon losses caused by altered root architecture and tillage distribution.

Shayle holds their own ▶ 20:14 Dissecting durability versus additionality uncertainties

Kann systematically breaks down the distinct structural risks in carbon markets, separating future land management durability from initial volumetric additionality.

the scores for every segment, with the reasoning behind each
ChapterTopicShayle as informed peerGuest teachingGuest disagreementShayle pushing backWhy
Natural Carbon Cycles and Historical Agricultural Disruption 5611 Kann establishes the conceptual framework of human agricultural disruption to the natural carbon cycle. Slesserev delivers an extensive overview of microbial respiration, plant exudates, and soil erosion dynamics.
Enhanced Rock Weathering and Inorganic Carbon Sequestration 4611 Kann guides the conversation toward enhanced rock weathering and inorganic sequestration mechanisms. Slesserev explains mineral dissolution, cation release, and bicarbonate formation in long-term carbon storage.
Regenerative Agriculture Practices and Carbon Permanence Limits 4611 Kann groups regenerative practices such as cover cropping and no-till to evaluate their climate mitigation efficacy. Slesserev notes that these practices were originally designed for agronomic fertility and cautions that microbial breakdown limits their permanence.
Sponsor Messages: Bloom Energy and Engie 6621 Kann demonstrates domain knowledge by delineating additionality and volume uncertainty from contractual durability risks. Slesserev explains that additionality challenges dwarf measurement hurdles, highlighting sampling depth flaws where no-till can cause deep carbon loss.
New Frontiers: Mineral Interactions and Soil Carbon Persistence 3710 Kann prompts Slesserev on emerging scientific frontiers. Slesserev provides an in-depth breakdown of the paradigm shift away from inherent chemical recalcitrance toward mineral-surface stabilization and organo-metal precipitates.
The Evolution and Flaws of Soil Carbon Modeling 4710 Kann asks how soil carbon modeling supports baseline projections. Slesserev details how widely used first-order linear decay models are mathematically outdated because they fail to account for microbial explicit dynamics and saturation limits.

Statements from this episode (10)

Assertion Supported
Slesserev: Crop Agriculture Adds Less Deep Soil Carbon Than Perennials
“Converting ecosystems that were composed of deeply rooted plants, like perennial grasses, with ecosystems that are managed by humans and composed of Our crop plants, which tend to be fairly short-lived and hence shallow-rooted, and therefore add less carbon to…”
Eric Slesserev Oct 6, 2022 ▶ 6:40
Assertion Supported
Slesserev: Unclear If Soil Erosion Is Net Carbon Source or Sink
“For instance, that erosion question I just brought up earlier, there's been an ongoing debate about, you know, whether The erosion of soil and transport of that carbon amounts to a source or a sink of CO₂ to the atmosphere. We don't really even feel certain ab…”
Eric Slesserev Oct 6, 2022 ▶ 10:38
Opinion
Slesserev: Evolving science makes precise soil carbon calculations currently impossible
“Our conceptual understanding of what goes on in soil and why carbon sticks around as long as it does in soil has been evolving really rapidly over the last couple decades, and it's by no means settled. so that, that doesn't mean that, you know, we're totally …”
Eric Slesserev Oct 6, 2022 ▶ 11:26
Insight
Slesserev: Mineral weathering stores carbon more durably than soil organic matter
“It's a more durable place to store carbon than in organic matter, which is, you know, if it's anywhere near the Earth's surface where oxygen and water can get to it, ultimately susceptible to decomposing, right?”
Eric Slesserev Oct 6, 2022 ▶ 15:02
Assertion Not checkable as stated
Slesserev: Enhanced rock weathering lacks field proof even locally
“The catch is that we still don't have many field studies, and so it hasn't really been proven even at a local level, let alone at scale. And it's, I It's probably pretty hard to quantify how much CO₂ is actually being removed via that pathway. There are many p…”
Eric Slesserev Oct 6, 2022 ▶ 15:25
Insight
Slesserev: Conservation Agriculture Is Not Equivalent to Permanent Carbon Removal
“Organic carbon is not necessarily a long-lived sink for atmospheric CO₂, and at some level, I think that's the central thing to keep in mind, is that microbes like to break down organic matter. It's how they make a living and so any one of these practices migh…”
Eric Slesserev Oct 6, 2022 ▶ 17:52
Opinion
Slesserev: Additionality Dilemmas in Soil Carbon Outweigh Physical Measurement Issues
“And this issue plagues the forestry sector as well. It's just as bad in the soil world. And I personally, I think that challenge swamps the measurement issues”
Eric Slesserev Oct 6, 2022 ▶ 22:16
Assertion Supported
Slesserev: No-till farming can actually deplete soil carbon at deeper depths
“Basically shifting tillage regime it means that not only are you changing the biology of the system and the rate at which carbon Flows through it, but also changing the vertical distribution of carbon, because tilling soil mixes carbon, and it also influences …”
Eric Slesserev Oct 6, 2022 ▶ 23:52
Opinion
Slesserev: Soil Carbon Sampling Must Go Deeper Than 30-Centimeter Standards
“It's still not clear exactly how deep we should be going although it's probably deeper than 30 centimeters, which is the kind of minimum that people require.”
Eric Slesserev Oct 6, 2022 ▶ 24:45
Opinion
Slesserev: Soil models used for carbon credit baselines are fundamentally outdated
“And so the models that are being used to make projections about carbon sequestration in soil, or to come up with estimates for baselines for those calculations, are They're essentially outdated, which is not to say that they're wildly inaccurate, but they don'…”
Eric Slesserev Oct 6, 2022 ▶ 33:26
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