Abstract
The clean-energy transition is conventionally argued as climate policy — a cost the present accepts to hold down a distant temperature. This report advances a different frame: the transition is best understood as a piece of global risk-mitigation infrastructure, a durable stock of protective capacity that, once deployed, lowers four distinct and coupled systemic dangers at once. Those four risk registers — the destabilisation of the climate; the air-pollution mortality that now claims 8.1 million lives a year and ranks as the second-leading risk factor for death worldwide; the insecurity of energy supply; and the geopolitics of who controls it — are not independent problems that happen to coincide. They grow from a shared root. The combustion of fossil fuels is simultaneously the dominant source of greenhouse gases, of lethal particulate pollution, of the volatile import bills that hollow out energy security, and of the concentrated resource wealth that underwrites coercive geopolitics.
Because the driver is shared, the intervention that replaces it is not four policies but one, pursued at scale. Deploying clean generation, efficient buildings, electrified transport, and the grids and storage that bind them together does not trade one risk against another; it lowers all four along the same channel through three mechanisms — substitution, which removes the harm at source; insulation, which removes exposure to fuel-market volatility; and capacity, which compounds the first two by building the industrial and institutional capability that speeds all future deployment. The report's analytical core is a deployment multiplier: a matrix mapping eight clean-energy technologies against the four risk registers, from which it can be read directly that most clean investments lower three or four of the four dangers simultaneously.
The report's distinctive claim concerns the operative verb. Risk is not reduced by targets, pledges or intentions; it is reduced by installed capacity. A gigawatt announced averts nothing; a gigawatt built and connected averts emissions, clears pollution and displaces imported fuel every year of its life. The world is short of neither ambition nor cheap technology, so the binding variable is the rate and scale of deployment. Deployment is already at record pace — renewable additions reached roughly 800 GW in 2025, and clean technology deployed since 2019 avoided around 3 Gt of CO2 in 2025 — yet a deployment gap persists, with the COP28 pledge to triple renewables to about 11.2 TW by 2030 now requiring some 1,122 GW a year against a record 2024 rate of 585 GW.
The implication is a reframing and an agenda. Clean deployment should be appraised, budgeted and financed as portfolio risk reduction across all four registers rather than as sectoral climate policy competing for an environmental budget line. That means counting the full multiplier in every major investment decision; closing the cost-of-capital wedge that makes globally cheap technology locally unaffordable; deploying the grids, supply chains and institutions that let generation become installed capacity; and building justly, so the transition avoids the mineral-dependency trap, stranded-worker shocks and ecological harms that can turn a cure into a new disease.
Executive Summary
The clean transition is conventionally argued as climate policy — a cost the present accepts to hold down a distant temperature. This report advances a different frame: it is a piece of risk-mitigation infrastructure that lowers four coupled dangers at once.
One driver, four dangers
Climate destabilisation, air-pollution mortality, energy insecurity and coercive energy geopolitics are not four problems that happen to coincide. They grow from a shared root: the combustion of fossil fuels. Because the driver is shared, the intervention that replaces it is not four policies but one, pursued at scale.
Deployment, not declaration
Risk is not reduced by targets, pledges or intentions. It is reduced by installed capacity. A gigawatt announced averts nothing; a gigawatt built and connected averts emissions, clears pollution and displaces imported fuel every year of its operating life. The operative variable is the rate of deployment.
The deployment multiplier
Mapping eight classes of clean infrastructure against the four risk registers shows that most clean investments lower three or four of the dangers simultaneously. An asset appraised against one register is being valued at a fraction of what it actually does.
The argument turns on a distinction between a flow of expense and a stock of protective capacity. Treated as climate policy, the transition is an annual cost, weighed each budget cycle against competing claims and discounted against a benefit that arrives decades later. Treated as infrastructure, it is a durable asset: once a wind farm, a grid interconnector or a heat pump is in place, it keeps lowering risk every year it operates, without further political decision. Sea walls, vaccine stockpiles and strategic reserves are financed on exactly this logic. Clean-energy capacity is not usually described in the same terms, and the difference in framing has consequences for how it is appraised, budgeted and financed.
The world is short of neither ambition nor cheap technology. Solar, wind and storage are now the least-cost source of new electricity across most of the world, and deployment is running at a pace that would have seemed fantastical a decade ago. What persists is a deployment gap — between the capacity pledged and the capacity built — and a geographic gap, with most investment bypassing precisely the fast-growing, fuel-importing, heavily polluted economies where the multiplier is largest. The residual risk sits in those two gaps, and closing them is the whole of the task.
2. Four Risk Registers
Taking each danger in turn, and asking in each case what deployment has already achieved and what it would achieve at scale.
2.1 Climate: deployment as avoided warming
The climate register is the one the transition is usually argued on, and the evidence here is now measurable rather than projected. The IEA's Global Energy Review 2026 estimates that the deployment of solar, wind, nuclear, electric cars and heat pumps since 2019 avoided about three gigatonnes of carbon dioxide in 2025 alone — roughly eight percent of global energy-sector emissions. That is not a pledge or a scenario; it is the accumulated output of assets that exist, and it recurs every year those assets keep running.
The scale of what is being built is easy to underestimate. Global renewable-power additions have broken records three years running, reaching roughly 800 gigawatts in 2025, of which solar was around three-quarters.
Figure 2 — Annual renewable power additions, 2015–2025
Additions more than quintupled in a decade. Sources: IRENA for 2024; IEA Global Energy Review 2026 for the 2025 estimate. Intermediate years follow the reported series.
The climate case also has a systemic dimension that a temperature figure obscures. The WMO's Atlas of Mortality and Economic Losses records that weather, climate and water extremes have driven economic losses and deaths on a scale that propagates directly into food systems, public finances and health systems. Avoided warming is therefore not only avoided temperature; it is avoided transmission into every other register a government manages.
2.2 Air pollution: the mortality dividend
The second register is the one most consistently left out of the argument, and it is the largest near-term benefit by a wide margin. Air pollution is not a distant risk with a discount rate attached; it is killing people now, at a rate that places it second among all risk factors for death worldwide.
Figure 3 — Deaths attributed to air pollution, 2021
Roughly one death in eight worldwide. Of the 8.1 million total, some 3.7 million are linked to household air pollution, overwhelmingly from burning solid fuels for cooking and heating. Source: Health Effects Institute, State of Global Air 2024.
The household share matters because it is the most tractable. Around 2.1 billion people still lack access to clean cooking, and the intervention — electrified or clean-fuel cooking — is cheap, well understood and immediate in effect. Unlike the climate benefit, which accrues globally and over decades, the pollution benefit is local and near-instantaneous: it appears in the lungs of the people living where the combustion stopped, within the same year.
This asymmetry is politically important. A government indifferent to a global temperature path may still be acutely interested in a measurable fall in respiratory admissions in its own cities. The pollution register is where the transition's case is strongest for the constituency least persuaded by the climate one.
2.3 Energy security: deployment as insurance
Here the infrastructure frame yields its most counter-intuitive result. Fossil fuels are usually cast as the secure, dependable option and renewables as the risky newcomer. The events of the last several years inverted that intuition.
Following Russia's full-scale invasion of Ukraine and the weaponisation of gas supply, benchmark European gas prices spiked roughly eightfold — the Dutch TTF price rose from around €44 per megawatt-hour to over €300 at the August 2022 peak — and the EU's total fossil-fuel import bill more than doubled.
Figure 4 — EU fossil-fuel import bill, before, during and after the gas shock
Ember estimates the crisis added close to a trillion euros to Europe's fossil-import costs. That is the price of exposure: a distant political decision transmitted directly into household bills, inflation, and fiscal and industrial stress. Source: Ember.
A deployed renewable stock is insulated from exactly this transmission. Its fuel is free and domestic; its price, once built, is fixed for its operating life; and it cannot be embargoed by a supplier state. Europe's policy response, the REPowerEU plan, treated accelerated deployment of renewables and efficiency explicitly as a security measure rather than a climate one — and by 2025 the combined solar-and-wind share of EU electricity had overtaken that of fossil fuels. The same capacity that cut emissions cut the exposure the shock had made unmistakable.
This framing also clarifies the standard objection, that solar and wind are intermittent and therefore insecure. Intermittency is a real engineering challenge — addressed in Section 5 through grids, storage and demand flexibility — but it is a different kind of risk from fuel exposure. Intermittency is predictable, local, and manageable with capacity a country builds and controls. Fuel exposure is a geopolitical variable a country cannot control at all. Trading the second for the first is, in security terms, an unambiguous improvement.
2.4 Geopolitics: from fuel leverage to mineral leverage
The fourth register is where the benefits are most real and the new risks most honest. The benefit is straightforward: a country that meets its energy needs from domestically deployed generation cannot be coerced through its fuel supply, because it has no fuel supply to coerce. The transition is, in this sense, a slow redistribution of geopolitical power away from resource endowment and toward manufacturing and deployment capability.
But that same shift creates a new dependency, and it would be dishonest to elide it. Clean-energy technologies are mineral-intensive, and the mining and — especially — the refining of those minerals are today more concentrated than oil ever was. The IEA's Global Critical Minerals Outlook 2025 finds that a single country, China, is the leading refiner for 19 of 20 strategic minerals, with an average market share around 70 percent, and that the combined share of the top three refined-material suppliers has risen to about 86 percent. The 2025 wave of export controls turned that concentration from a theoretical vulnerability into a live instrument of statecraft.
Figure 5 — Refining concentration barely eases: China's projected share of refined supply, 2035
On the IEA's projections the concentration persists to 2035, with China still supplying over 60 percent of refined lithium and cobalt and around 80 percent of battery-grade graphite and rare earths. Bars are plotted at the stated thresholds; the underlying figures are "over 60" and "around 80" percent. Source: IEA, Global Critical Minerals Outlook 2025.
The right conclusion is neither triumphalism nor false equivalence. The two dependencies are structurally different. Fuel is a flow that must be purchased continuously, so its leverage recurs with every unit burned. A mineral is a stock embedded once in a decades-long asset, so its leverage is front-loaded and then fades. And unlike an oil reserve, a refinery can be built elsewhere, a battery can be recycled, and a chemistry can be substituted. The policy task is to deploy fast enough to capture the security benefit while diversifying refining, scaling recycling and building manufacturing — so that the transition reduces coercive risk on balance rather than merely relocating it.
3. The Deployment Multiplier
The analytical core: mapping classes of clean infrastructure against the four registers, and reading the result by row.
Sections 1 and 2 examined the four registers one at a time. The point of the infrastructure frame is that they should not be examined one at a time, because the same deployed asset appears in several of them. The matrix below makes that structure explicit. Each row is a class of clean-energy infrastructure; each column is one of the four registers; each cell is a qualitative judgement of how much deploying that technology lowers that danger.
Table 1 — The deployment multiplier: eight technologies against four risk registers
| Clean infrastructure | Climate | Air-pollution mortality | Energy insecurity | Geopolitical coercion |
|---|---|---|---|---|
| Solar, wind, hydro, geothermal power | Very strong | Very strong | Very strong | Very strong |
| Grids, storage & interconnection | Strong | Modest | Very strong | Strong |
| Energy efficiency & green buildings | Very strong | Strong | Very strong | Strong |
| Clean cooking & electrified heat | Strong | Very strong | Strong | Modest |
| Electrified & public transport | Very strong | Very strong | Strong | Strong |
| Domestic clean-tech manufacturing | Strong | Modest | Strong | Very strong |
| Demand response & digital control | Strong | Modest | Very strong | Modest |
| Nature-based & resilient systems | Very strong | Modest | Modest | Modest |
Cell values are qualitative judgements informed by the evidence in Section 2, not measured effect sizes. The pattern, not any individual cell, is the argument.
The pattern is the argument. Very few cells are empty. Clean power is the clearest multisolver: deployed at scale it substitutes for combustion (climate), removes the emitting source near people (pollution), replaces imported fuel with a domestic stock (energy security), and dissolves fuel-based leverage (geopolitics) — scoring strongly on all four. Domestic clean-tech manufacturing is weaker on pollution but the single strongest entry on geopolitics, because it addresses the dependency the transition itself creates. Nature-based systems are the narrowest, doing most of their work in one register.
Reading the matrix by row rather than by cell gives the multiplier directly.
Figure 6 — How many of the four registers each technology lowers strongly
Counting cells rated "strong" or "very strong" in Table 1. Most clean-energy investments lower at least three of the four dangers at once. Derived from the matrix above.
This is the quantitative heart of the infrastructure argument. An investment justified on any one register is, in most cases, also buying substantial reductions in two or three others — reductions that appear nowhere in the appraisal that authorised it.
The multiplier also explains why the transition is systematically undervalued in practice. Budgets, appraisals and mandates are organised danger by danger: an energy ministry buys the cheapest electricity, a health ministry funds clinics, a security council worries about fuel supply, a trade ministry about supply chains. An asset that lowers four dangers at once is scored by whichever institution happens to be buying it, against that institution's single register — so its measured return is a fraction of its actual one. The distortion is not in the technology's economics but in the accounting applied to them.
4. The Deployment Gap
If risk reduction is a function of deployment, then residual risk is a function of the gap between what has been pledged and what has been built — and of where building is not happening at all.
At COP28 in 2023, governments committed to triple global renewable-power capacity by 2030, from roughly 3,400 gigawatts to about 11,200 gigawatts. Deployment has since broken records three years running: additions reached about 585 gigawatts in 2024, a 15 percent annual rise that lifted installed capacity to 4,448 gigawatts, and an estimated 800 gigawatts in 2025.
And yet, on IRENA's October 2025 assessment, the target is within reach but not on track: meeting it now requires adding about 1,122 gigawatts every year from 2025 onward — annual growth accelerating to some 16.6 percent — and roughly US$1.5 trillion of investment a year. Record-breaking is not the same as sufficient.
Figure 7 — The deployment gap: installed renewable capacity, history and two paths to 2030
If the record 2024 pace merely held flat, the world would reach roughly 8 terawatts by 2030 — a remarkable achievement, and still some three terawatts short of the pledge. The shaded wedge is where the risk continues to sit. History from IRENA; the required path is IRENA's stated 1,122 GW-a-year requirement; the flat-pace path holds the 2024 rate constant and is illustrative.
The shaded wedge between the two paths is the report's central quantity. It is not an abstraction: it is the emissions not avoided, the pollution not cleared, the fuel exposure not removed, and the leverage not dissolved. And because the four registers move together, the wedge is quadruple-counted in harm terms — every gigawatt inside it forgoes reductions across all four at once.
4.1 The geographic gap
The second gap is spatial, and it may matter more. Deployment is spectacularly concentrated. China alone accounted for roughly 64 percent of global renewable additions in 2024, and Asia as a whole for about 72 percent.
Figure 8 — Clean energy now outspends fossil fuels two to one — but the money does not go where the multiplier is largest
Global clean-energy investment of about US$2.2 trillion against US$1.1 trillion for fossil fuels. The clean-energy split between China and advanced economies on the one hand and the rest of the world on the other is indicative of the reported concentration rather than an exact reported partition. Source: IEA, World Energy Investment 2025.
This concentration is the deployment gap's cruellest feature, because the places being bypassed are the places where the multiplier is largest. It is in fast-growing, fuel-importing, heavily polluted developing economies that a marginal gigawatt of clean power lowers the most emissions, clears the most lethal air, removes the most import exposure and builds the most industrial capacity. The binding constraint there is rarely the technology, whose cost is much the same everywhere.
Where the risk actually sits
Two gaps, not one. The pledge-to-installed gap is a question of rate: roughly 1,122 GW a year against a record 585. The geographic gap is a question of place: most investment flowing to the economies where each marginal gigawatt buys the least additional risk reduction. Closing the first without the second would still leave the largest available reductions unbought.
5. What Governs the Rate
The technology is ready and, in most markets, cheapest. The constraints are elsewhere — in finance, in physical networks, in supply chains, and in institutions.
Table 2 — The four binding constraints on deployment
| Constraint | Why it binds | What releases it |
|---|---|---|
| Cost of capital | Clean energy is capital-intensive and fuel-free, so its lifetime cost is dominated by the price of money. Halve the interest rate and you roughly halve the cost of the electricity. | Concessional finance, guarantees, currency-risk instruments, multilateral development bank reform, resolution of the debt overhang. |
| Grids & permitting | A generator that cannot connect deploys no capacity. In a growing number of markets the connection queue, not the build cost, is the binding limit. | Transmission and storage as named national priorities with their own targets; permitting re-engineered for thousands of distributed assets rather than a few large plants. |
| Supply chains | Deployment depends on manufacturing capacity for panels, turbines, batteries and transformers, and on refined minerals. A disruption at a refining chokepoint slows deployment everywhere. | Diversified mining and refining, recycling capacity, domestic and allied clean-tech manufacturing. |
| Institutions | Deployment happens through planning systems, auctions, tariff regimes and land permitting. Countries that stall usually lack these, not the technology or the ambition. | Stable policy, credible auctions, competent grid and permitting institutions, administrative capacity to run them. |
Of the four, the cost of capital is the one that most directly explains the geographic gap. The cost-of-capital wedge — often 400 to 800 basis points between advanced and developing economies — turns a globally cheap technology into a locally unaffordable one. The same solar project, with the same panels at the same price, produces electricity at wildly different costs depending only on what it costs to borrow. Closing the geographic gap is therefore less a question of invention than of finance.
The institutional constraint is the least glamorous and often the most binding, because it governs whether capital, hardware and grid access can actually be combined into installed capacity. It is also the one least amenable to money alone: a country can be offered concessional finance and still fail to deploy if it has no credible auction mechanism to allocate it.
6. Frictions and Honest Counters
The claim that deployment lowers four dangers at once is a strong one. A serious case for it must survive its own counter-arguments.
The co-benefits set out in Section 3 are potential, not automatic. Deployment done badly can reduce little risk, or create new risk. Six qualifications deserve to be stated plainly.
- Additionality. The climate and pollution benefits depend on clean capacity displacing combustion, not merely adding to total supply. Where demand grows fast enough that new clean capacity sits on top of undiminished fossil generation, emissions and pollution do not fall. Deployment must be paired with retirement.
- Relocated leverage. A transition that races ahead on deployment while leaving mining, refining and manufacturing concentrated simply moves coercive leverage from fuel exporters to mineral processors. The geopolitical benefit is contingent on diversification being built alongside deployment, not after it.
- Stranded assets and workers. Retiring fossil assets creates stranded capital, displaced workers and fiscal shocks in fossil-dependent regions and states. Handled without a just-transition strategy, the transition can generate exactly the kind of political and economic instability it is meant to reduce.
- Land, grid and ecological conflict. Deployment can outrun the grid and provoke land-use and permitting conflict. Poorly sited hydropower can emit methane and displace communities; unsustainable bioenergy can compete with food and forests. The nature-based row of the matrix can turn negative if deployment is careless.
- Rebound. Efficiency gains that lower the cost of energy services can induce more consumption of them, eroding part of the saving. Efficiency remains among the cheapest capacity, but its risk reduction should not be assumed to be one-for-one.
- Intermittency, honestly stated. Variable generation requires grids, storage and flexibility to deliver firm supply. This is a solved problem in engineering terms but an unsolved one in many deployment programmes, and a system that adds generation without flexibility will under-deliver on the security register it was meant to serve.
What would falsify the argument
If clean capacity were deployed at scale and fossil generation did not fall; if refining concentration were to deepen rather than diversify; or if the transition's fiscal and employment shocks were left unmanaged in fossil-dependent regions — then deployment would have bought far less risk reduction than this report claims, and in the last case might have created new instability. Each is an empirical question with an observable answer, and each is addressed by a specific item in the agenda below.
7. A Deployment Agenda
Five moves that follow from the frame: count the multiplier, price the incumbent, fix the finance, deploy the enabling infrastructure, and build justly.
7.1 Count the full multiplier
- Require multi-benefit appraisal — including avoided health costs and avoided fuel exposure — in every major energy and infrastructure decision.
- Move clean deployment out of the environmental budget silo and into core energy, health and security planning, where its benefits actually land.
- Price the incumbent's harms: end the implicit subsidy that unpriced pollution and climate damage confer on fossil fuels. The IMF estimates total fossil-fuel subsidies, explicit and implicit, in the trillions of dollars a year.
7.2 Fix the cost of capital
- Scale concessional finance, guarantees and currency-hedging instruments to compress the 400–800 basis-point wedge.
- Complete the reform of the multilateral development banks to expand lending headroom and crowd in private capital at investment-grade terms.
- Resolve the debt overhang that starves fuel-importing developing economies of the fiscal space for up-front clean investment.
7.3 Deploy the enabling infrastructure
- Treat transmission and storage as national infrastructure priorities with their own deployment targets and financing.
- Re-engineer permitting and grid-connection processes for thousands of distributed assets rather than a handful of large plants.
- Pair every deployment surge with efficiency and with managed fossil retirement, so clean capacity substitutes for combustion rather than adding to it.
7.4 Break the new dependency
- Diversify mining and, above all, refining capacity, guided by the IEA's critical-minerals analysis.
- Scale battery and component recycling to turn today's deployed stock into tomorrow's mineral supply.
- Support diversified domestic and allied clean-tech manufacturing, converting a new dependency into genuine security.
7.5 Build justly, or not at all
- Fund just-transition measures — retraining, regional investment, managed asset retirement — in fossil-dependent regions and states.
- Site generation, hydropower and bioenergy to protect food systems, ecosystems and communities, keeping the nature-based register positive.
- Sequence the agenda: no-regret finance and institutional reform first, enabling grid and supply-chain investment next, transformational build-out throughout.
7.6 Conclusion
The clean transition is usually argued, and usually resisted, as a sacrifice: a cost borne now for a benefit that arrives late, elsewhere, and to someone else. The evidence assembled here supports a different description. Deployment is the rare investment that pays in several currencies of risk at once — in avoided warming, in lungs, in energy bills that cannot be weaponised, and in leverage that dissolves rather than accrues — and it pays those returns every year the asset operates, without further political decision.
The binding constraint is not technology, whose cost has already collapsed, nor ambition, which the COP28 pledge amply demonstrates. It is the rate at which capacity is actually built, and the places where it is not being built at all. Those two facts define the task with unusual precision: raise the rate, and move the deployment to where the multiplier is largest.
What is required to do that is, in the end, an accounting change and a financing one. Count what deployment actually reduces, across all four registers rather than the one that happens to be paying; and make capital available at a price that reflects the risk being removed rather than the risk of the jurisdiction. Neither requires an invention. Both require deciding that the transition is infrastructure — and then building it fast enough that the risk actually falls.
References
Every quantitative claim above is attributed inline. The principal sources are collected here.
- IPCCSixth Assessment Report, Working Group III: Mitigation of Climate Change.
- Health Effects InstituteState of Global Air 2024 — air-pollution mortality, ambient and household.
- IEAGlobal Energy Review 2026: CO₂ emissions — emissions avoided by clean technology deployed since 2019.
- IEAGlobal Energy Review 2026: Key findings — 2025 renewable additions.
- IEAWorld Energy Investment 2025 — clean and fossil investment totals, the cost-of-capital wedge.
- IEAGlobal Critical Minerals Outlook 2025 — refining concentration and 2035 projections.
- IEAWith new export controls on critical minerals, supply concentration risks become reality.
- IRENARecord-breaking annual growth in renewable power capacity — 2024 additions and installed base.
- IRENAWorld breaks renewable records but must move faster to hit 2030 tripling goal — the 1,122 GW-a-year requirement.
- EmberLatest energy shock reminds Europe of its risky gas reliance — TTF prices and the EU fossil-import bill.
- European CommissionREPowerEU — deployment framed as an energy-security measure.
- WMOAtlas of Mortality and Economic Losses from Weather, Climate and Water Extremes (1970–2021).
- World Bank / ESMAPTracking SDG 7: The Energy Progress Report — clean-cooking and electricity access.
- IMFEnergy subsidies — explicit and implicit fossil-fuel subsidies.
- World Economic ForumGlobal Risks Report 2026 — the interconnection of the risk landscape.
Metadata
- Keywords
- clean energy transitionmitigation infrastructurepolycrisissystemic riskdeployment gapair pollution mortalityenergy securitycritical mineralscost of capitalCOP28 tripling pledgeco-benefitsmultisolving
- JEL classification
- Q42, Q54, Q48, F51, I18 — alternative energy sources; climate and natural disasters; government policy; international conflicts and negotiations; government policy and health
- Data and method
- This report synthesises institutional and peer-reviewed research on clean-energy deployment, air-pollution mortality, energy security and critical-mineral supply, including the IPCC Sixth Assessment Report (Working Group III); the Health Effects Institute State of Global Air 2024; the IEA Global Energy Review 2026, World Energy Investment 2025 and Global Critical Minerals Outlook 2025; IRENA capacity statistics; Ember's analysis of the European gas shock; the WMO Atlas of Mortality and Economic Losses; and World Bank / ESMAP energy-access tracking. Every quantitative claim is attributed inline to a primary or authoritative source. Figure 1 is a conceptual schematic and Table 1 records qualitative judgements rather than measured effect sizes; the flat-pace path in Figure 7 and the clean-investment split in Figure 8 are illustrative of reported concentration rather than exact reported partitions. The report is analytical rather than predictive.
- Report
- H Heuristics Digital Report № 2026-01 · Published 10 September 2026
- Licence
- CC BY-NC-ND 4.0
- Cite as
- Hunter Hughes (2026). The Clean Transition as Global Polycrisis Mitigation Infrastructure: Reducing climate, pollution, energy and geopolitical risks through deployment. H Heuristics Digital Report 2026-01. https://digitalreports.hheuristics.com/reports/clean-transition-mitigation-infrastructure/