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Nuclear Energy
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Definition:
- Energy released by nuclear reactions: fission (splitting heavy nuclei like uranium-235 or plutonium-239) or fusion (combining light nuclei like isotopes of hydrogen).
Key advantages:
- High energy density: far more energy per unit mass than chemical fuels.
- Low direct CO2 emissions during operation: helps mitigate climate change compared with coal/gas.
- Reliable baseload power: operates continuously independent of weather.
Key disadvantages and risks:
- Radioactive waste: long-lived high-level waste requires secure long-term management.
- Accident potential: rare but severe events (e.g., Chernobyl 1986, Fukushima 2011) with health, environmental, and economic consequences.
- Proliferation risk: technology and materials can be diverted to weapons.
- High upfront costs and long construction times.
Variants and developments:
- Light-water reactors (current mainstream).
- Advanced designs: small modular reactors (SMRs), Generation IV reactors (e.g., molten salt, fast breeders) aim to improve safety, waste use, and economics.
- Nuclear fusion: experimental (e.g., ITER) — promises abundant clean energy but remains not yet commercially realized.
Policy and ethical considerations:
- Trade-offs between climate goals and safety/proliferation/waste concerns.
- Equity: siting, cost, and intergenerational responsibility for waste management.
- Regulatory and institutional capacity critical for safe deployment.
Further reading:
- World Nuclear Association: https://www.world-nuclear.org
- IPCC Special Reports on mitigation and pathways including nuclear energy.
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