Overview

Overview
Two rows of solar panels
Figure 5.1: Black and Silver Solar Panels
Credit: Pixabay from Pexels licensed under CC0

Solar PV as an Energy System and a Material System

Solar photovoltaics are a major renewable energy technology. PV systems convert sunlight into electricity and can reduce greenhouse-gas emissions when solar electricity displaces electricity from fossil fuels. PV deployment therefore plays an important role in many energy-transition pathways.

PV systems also require raw materials, refining, manufacturing, global supply chains, land, labor, supporting infrastructure, maintenance, waste management, and end-of-life planning. Solar panels do not burn fuel during operation, but PV systems still have life-cycle impacts. Those impacts begin with extraction and continue through processing, manufacturing, transportation, installation, operation, decommissioning, recycling, and disposal.

Central Question: How should the goals and scope of a life cycle assessment shape the ethical evaluation of solar photovoltaics?

Lesson 5 at a Glance

Lesson Element

Focus

DurationTwo weeks
TechnologySolar photovoltaic cells, modules, arrays, and complete systems
Methodological centerLife Cycle Assessment: goal and scope, functional unit, system boundary, impact categories, assumptions, and harmonization
Material contextCritical minerals, material flows, manufacturing, supply-chain concentration, toxicity, and end of life
Ethics methodEthics Matrix C: embedded choices in boundaries, categories, assumptions, proxies, exclusions, and priorities
Applied casesPV payback; PV materials, toxicity, and pollution; PV procurement and supply chains
Final taskA goals-and-scope framework and approximately 1,000-word ethical analysis supported by Matrix C

Why PV Requires Life-Cycle Thinking

PV systems can appear clean when analysis begins and ends with electricity generation. Point-of-use analysis does not capture the full system. Life-cycle thinking asks where materials come from, how they are processed, which energy sources power manufacturing, what emissions and wastes are produced, who experiences mining and refining impacts, how modules perform over time, and what happens when equipment is damaged or reaches the end of its useful life.

Life-Cycle Stage

Examples

Ethical Questions

Extraction and refiningSilicon feedstocks, silver, copper, aluminum, glass inputs, cadmium, tellurium, and other materialsWhich communities, workers, and ecosystems bear extraction and processing impacts?
ManufacturingWafers, cells, modules, inverters, wiring, frames, racking, and supporting equipmentWhich electricity mix, labor conditions, chemicals, emissions, and controls shape production?
Transport and installationFreight, land preparation, structures, foundations, grid interconnection, and constructionWhich infrastructure and land-use effects belong within the system boundary?
Operation and maintenanceElectricity generation, degradation, cleaning, monitoring, repairs, and replacementsHow do lifetime, solar resource, performance, and replacement assumptions change the result?
End of lifeReuse, refurbishment, recycling, recovery, transport, disposal, and residual wasteWho is responsible for collection, financing, recovery, and remaining harms?

Critical Minerals and Material Flows

PV supply chains include silicon, silver, copper, aluminum, glass, polymers, cadmium, tellurium, indium, gallium, and other inputs depending on module type and system design. Some materials are abundant but energy-intensive to process. Other materials raise concerns about scarcity, refining concentration, environmental harm, labor conditions, toxicity, trade dependence, or competition with other energy technologies.

Critical-Minerals Question

Why It Matters

Availability and competing demandRapid deployment can increase pressure on materials used across multiple clean-energy technologies.
Mining and refining locationEnvironmental and social burdens may be concentrated far from the place where electricity is consumed.
Supply-chain concentrationA small number of countries or firms may control important manufacturing and refining stages.
Labor and occupational healthWorkers may face exposure, coercion, weak protections, or limited ability to challenge unsafe conditions.
Community consent and distributionLocal communities may bear land, water, pollution, or infrastructure burdens without proportionate benefits.
Recycling and circularityRecovery can reduce virgin-material demand, but technical recyclability does not guarantee actual collection or recovery.
Transparency and traceabilityWeak visibility across tiers makes environmental and labor claims difficult to verify.

Lesson Structure

Page

Primary Focus

Questions to Carry Forward

Part 1: Introduction to Solar PhotovoltaicsBasic PV science, system components, technology types, performance, and material implicationsWhat counts as the PV system? Which technical choices change material and life-cycle results?
Part 2: Life Cycle Assessment of Photovoltaic SystemsGoal and scope, functional unit, boundaries, impact categories, harmonization, data, and assumptionsWhat can this LCA legitimately claim, and what remains outside its boundary?
Case 1: Does PV Pay Back?Financial, energy, greenhouse-gas, and industry-level paybackWhich boundary, baseline, comparison case, and time horizon define “payback”?
Case 2: PV Materials, Toxicity, and PollutionHazard, exposure, risk, manufacturing impacts, trace metals, waste, and end of lifeWhich substances, pathways, populations, and life-cycle stages are included or omitted?
Case 3: Where Should I Buy My PV?Procurement, global supply chains, quality, labor, critical minerals, transparency, installers, and end-of-life responsibilityWhich values and evidence should shape purchasing decisions?

Lesson Objectives

By the end of Lesson 5, you should be able to:

  • explain the basic science behind photovoltaic systems;
  • describe PV systems as both energy systems and material systems;
  • identify the major stages in the PV life cycle;
  • distinguish Life Cycle Assessment from Life Cycle Cost Assessment;
  • define an appropriate goal and scope for a PV LCA;
  • distinguish cradle-to-grave, cradle-to-gate, gate-to-gate, and cradle-to-cradle boundaries;
  • explain why functional units, comparison cases, and harmonization matter;
  • identify ethical issues involving critical minerals, mining, manufacturing, toxics, supply chains, labor, and end-of-life management;
  • explain how LCA assumptions and exclusions shape ethical conclusions; and
  • apply Ethics Matrix C to the goals and scope of a possible PV life cycle assessment.

Key Concepts

PV and Materials

LCA Methods

Ethics and Decision Context

PV cell, module, array, and systemGoal and scopeCritical minerals
Crystalline-silicon and thin-film PVFunctional unitMaterial flows
Efficiency, degradation, and lifetimeSystem boundaryToxicity, exposure, and risk
Balance-of-system componentsCradle-to-grave / gate / cradleSupply-chain concentration
Energy and greenhouse-gas paybackImpact categories and inventory dataTransparency and traceability
Manufacturing electricity mixHarmonization and sensitivityProcurement ethics
Recycling and end of lifeUncertainty and limitationsEmbedded assumptions and exclusions

Assigned Readings and Review Materials

Complete the assigned readings during the week indicated. The readings define the evidence base for the lesson and should be used directly in your Yellowdig discussion and goals-and-scope analysis.

Week 1 Readings

Reading

Assigned Portion

Use in the Lesson

1. Stucki, Matthias, Michael Götz, Mariska de Wild-Scholten, and Rolf Frischknecht. 2024. Environmental Life Cycle Assessment of Electricity from PV Systems: 2023 Data Update. IEA Photovoltaic Power Systems Programme, Task 12. Read the complete 22-slide deck.LCA framework and current PV environmental results. Use it to identify current life-cycle results, system assumptions, technology differences, and comparative patterns.
2. Smith, Brittany L., Ashok Sekar, Heather Mirletz, Garvin Heath, and Robert Margolis. 2024. An Updated Life Cycle Assessment of Utility-Scale Solar Photovoltaic Systems Installed in the United States. NREL/TP-7A40-87372. Read the Executive Summary; Section 2.1; Sections 2.4.1-2.4.3; Sections 4 and 5; and Section 5.3.Applied U.S. utility-scale PV LCA. Use it to examine goal and scope, U.S.-specific assumptions, life-cycle greenhouse-gas results, uncertainty, and interpretation.

Week 2 Readings

Reading

Assigned Portion

Use in the Lesson

3. National Renewable Energy Laboratory. 2026. Solar Photovoltaic Module Facts and Trends.Read the full fact sheet.Module materials, trace metals, manufacturing trends, module design, and end-of-life context. Use it especially with Case 2.
4. International Energy Agency. 2022. Solar PV Global Supply Chains. Paris: IEA. Read the Executive Summary and the sections on the major manufacturing stages.Supply-chain concentration and procurement context. Use it to trace polysilicon, wafer, cell, and module manufacturing and to evaluate concentration across the supply chain.
5. International Energy Agency. 2025. Global Critical Minerals Outlook 2025 — Executive SummaryRead the Executive Summary.Current critical-minerals conditions and outlook. Use it to place PV material demand within wider supply, concentration, investment, recycling, and geopolitical trends.

How the Readings Connect to the Lesson Pages

Lesson Page or Case

Most Directly Relevant Readings

Part 2: Life Cycle Assessment of PV SystemsStucki et al. (2024) and Smith et al. (2024)
Case 1: Does PV Pay Back?Stucki et al. (2024) and Smith et al. (2024)
Case 2: PV Materials, Toxicity, and PollutionNREL (2026), with supporting LCA results from Stucki et al. (2024) and Smith et al. (2024)
Case 3: Where Should I Buy My PV?IEA (2022), IEA (2025), and NREL (2026)

What to Look for in the Readings

LCA or Ethics Choice

Questions to Ask

Goal of the assessmentWhat decision is the study intended to support, and who is the intended audience?
Functional unitWhat service is being compared, and does the unit permit a fair comparison?
System boundaryWhich stages and supporting systems are inside or outside the analysis?
Comparison caseWhat baseline or alternative is being used, and is the comparison compatible?
Impact categoriesWhich environmental or social effects are quantified, and which remain outside the result?
Data and geographyWhere and when were the data collected, and how well do they match the case?
Uncertainty and sensitivityWhich assumptions most strongly influence the results?
Stakeholder visibilityWhose benefits, burdens, exposures, or responsibilities become visible through the chosen scope?

Ethics Matrix C: Embedded Choices in LCA Design

Ethics Matrix C is the primary ethics method for this lesson. Matrix C helps identify how technical analysis embeds values through problem definitions, boundaries, categories, assumptions, proxies, exclusions, comparison criteria, and priorities.

Embedded Choice

PV LCA Example

Ethical Consequence

Problem definitionDefining the question as greenhouse-gas reduction rather than total environmental or social performanceOther impacts may become secondary or disappear from the analysis.
System boundaryEnding the study at the factory gate or excluding recycling infrastructureUpstream or downstream stakeholders and burdens may be omitted.
Functional unitComparing one module rather than one kilowatt-hour of delivered electricityDifferences in efficiency, lifetime, and output may be distorted.
Impact categoriesReporting carbon but excluding toxicity, water stress, labor, or land useA technology may appear preferable because unmeasured impacts remain invisible.
Data and proxy choicesUsing generic global data for a specific manufacturing locationLocal conditions and vulnerable populations may be poorly represented.
Allocation and recycling creditsAssigning recovered-material benefits to the original product or a future productThe apparent environmental performance changes with the allocation rule.
Comparison and weightingPrioritizing cost, emissions, supply security, or domestic content differentlyDifferent values can support different procurement conclusions.

Assignment Focus

You will not conduct a complete technical LCA. A complete LCA requires more data, modeling, and technical detail than this assignment allows. Your task is to define and ethically evaluate the goals and scope of a possible PV life cycle assessment.

Your Framework Should Establish

Your Analysis Should Explain

The PV case or decision being evaluatedWhy the selected goal and scope fit the decision
The question the LCA is intended to answerHow the functional unit and comparison case shape the result
An appropriate functional unitWhich stakeholders and values become visible
The system boundaryWhich stakeholders or impacts may remain outside the boundary
The life-cycle stages includedHow assumptions and exclusions influence interpretation
Any excluded stages and the reasons for exclusionHow Matrix C changes or strengthens the proposed framework
The most relevant impact categoriesWhat evidence would be needed for a defensible assessment
Likely data sources and uncertaintiesWhat the proposed LCA could and could not legitimately claim

Two-Week Work Plan

Week

Complete

Produce or Submit

Week 1Read Part 1, Part 2, and Case 1. Complete Stucki et al. (2024) and the assigned sections of Smith et al. (2024). Participate in Yellowdig.Develop a draft goals-and-scope framework for a possible PV LCA.
Week 2Read Cases 2 and 3. Complete NREL (2026), IEA (2022), and the IEA (2025) Executive Summary. Continue Yellowdig participation.Complete Ethics Matrix C and submit the completed matrix with an approximately 1,000-word LCA goals-and-scope analysis in Canvas.

Guiding Questions

Questions 1-6

Questions 7-12

1. What counts as the PV system being evaluated?7. Which impact categories belong inside the assessment?
2. Where should the life-cycle boundary begin and end?8. Which impacts or stakeholders may be left outside the assessment?
3. What functional unit should be used?9. Who benefits from the selected boundary?
4. What comparison case is appropriate?10. Who may be made invisible by the selected boundary?
5. Which life-cycle stages matter most for the ethical question?11. Which assumptions are most uncertain or consequential?
6. Which critical minerals or material inputs deserve special attention?12. How would a different goal, scope, or comparison change the ethical interpretation of PV?

Questions?

Use Canvas email for questions about readings, assignment expectations, or your specific Matrix C analysis. You are also encouraged to help classmates clarify course concepts through Yellowdig when appropriate.

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