Science & Technology • Years 10-13 • Ready to teach

Renewable Energy and Māori Innovation

Support ākonga to explore renewable energy in Aotearoa through kaitiakitanga, Māori-led innovation, and design choices that balance environmental, cultural, and community wellbeing.

Teaching use

Senior science, sustainability, or technology lessons introducing energy systems through an Aotearoa context rather than imported case studies.

Best for

Years 10-13 classes studying energy transfer, environmental systems, innovation, or local problem-solving.

Prep level

Low to medium. Print the comparison handouts, choose one local energy case study, and decide how much design work you want students to do.

Next step

Adapt the case study in Te Wānanga, generate a school-local design brief, then save it to My Kete or Creation Studio.

Use this lesson as a practical sustainability base

This page is free to teach as-is. Te Wānanga becomes useful when you want to change the local context, simplify the science load, or produce a more formal innovation brief without losing the Māori lens.

  • Swap in a local wind, solar, hydro, or geothermal example from your rohe.
  • Generate differentiated design prompts for junior, mixed-ability, or senior classes.
  • Save a class-specific version for future teaching and moderation in My Kete.

Teacher planning snapshot

  • Duration: 2 to 3 lessons of 50-60 minutes.
  • Grouping: Whole-class introduction, paired handout analysis, then small group design challenge.
  • Prep: Decide whether students will compare existing energy systems or propose an energy design for a local place.
  • Pedagogy: Keep the focus on energy choices as community decisions, not just technical efficiency. Ask who benefits, who carries risk, and what kaitiakitanga demands.
🕒 2-3 lesson sequence 🌿 Sustainability + innovation

Resources provided here

  • Renewable energy comparison handout
  • Traditional knowledge and kaitiakitanga handout
  • Structured note-taking prompts and discussion questions
  • Design brief criteria for a local energy solution
  • Curriculum companion page for planning and reporting

If this lesson asks students to compare technologies, justify choices, or sketch an energy proposal, the supporting handouts are linked below so kaiako do not have to invent them on the fly.

Ngā Whāinga Ako / Learning Intentions

  • We are learning to explain how renewable energy systems work in Aotearoa contexts.
  • We are learning to compare technological choices using kaitiakitanga, practicality, and community impact.
  • We are learning to use Māori innovation examples as evidence of sophisticated design, adaptation, and long-term environmental thinking.

Paearu Angitu / Success Criteria

  • I can describe at least two renewable energy systems and their strengths and limits.
  • I can explain how kaitiakitanga changes what counts as a “good” energy solution.
  • I can use evidence from Māori-led innovation or traditional environmental knowledge in my discussion or design response.
  • I can justify a recommended energy approach for a specific local context.

Curriculum integration / Te Marautanga alignment

This lesson works best when the curriculum links are named clearly. Use the companion page to map the science, technology, and sustainability focus for planning, moderation, and local curriculum reporting.

⚡ Pūtaiao / Science 🛠️ Hangarau / Technology 🌏 Kaitiakitanga

Context, care, and kaupapa

Māori innovation should not be framed as a historical curiosity added onto modern science. This lesson works best when kaiako name mātauranga Māori as knowledge developed through observation, design, adaptation, and intergenerational responsibility. Renewable energy choices are social and cultural decisions as well as technical ones.

Invite ākonga to ask who gets to decide where energy infrastructure sits, whose values shape “progress,” and how tikanga or kaitiakitanga can deepen rather than weaken technological innovation.

Lesson sequence

1. Tuning in: What counts as good energy?

Use a quick brainstorm: cheap, reliable, clean, local, future-focused, culturally acceptable. Then ask which of these are usually centred and which are often ignored.

2. Compare energy systems

Students use the renewable energy handout to compare solar, wind, geothermal, hydro, or tidal possibilities. They identify one system that appears strongest on paper and one that raises concerns in a local context.

3. Add the Māori innovation lens

Use the traditional knowledge handout to unpack how observation of land, water, weather, and long-term ecosystem health can inform modern design decisions. Students note where mātauranga Māori changes the criteria for success.

4. Design challenge

In groups, students recommend an energy solution for a place such as a marae, coastal community, kura, or remote settlement. They must explain the science and the kaupapa behind the choice.

5. Share and critique

Groups present a short justification. Peers respond using the prompt: How well does this idea balance efficiency, resilience, and kaitiakitanga?

Ready-to-use scaffolds

Energy comparison frame

  • Energy source: What powers the system?
  • Scientific strength: Why is this efficient or useful?
  • Local challenge: What could make this difficult in Aotearoa or in our rohe?
  • Kaitiakitanga question: What impact might this have on whenua, wai, whānau, or future generations?

Group design brief sentence starters

  • We recommend this energy approach because...
  • Scientifically, the strongest reason is...
  • From a kaitiakitanga perspective, we also need to consider...
  • A risk or limitation we must manage is...
  • This idea would work best in our context if...

Discussion prompts

  • Does “renewable” automatically mean “good”?
  • What changes when a community, hapū, or iwi is involved in the decision-making?
  • Which energy systems fit Aotearoa’s geography and values best?
  • How should schools or local councils weigh cultural and environmental impact?

Assessment and feedback

Possible task: Students produce a group proposal, short report, or design pitch for a local renewable energy solution, supported by scientific reasoning and a kaitiakitanga lens.

Criteria Developing Secure Strong
Scientific understanding Identifies a system but explains it loosely. Explains how the chosen system works using relevant science ideas. Uses science ideas accurately and applies them convincingly to the chosen context.
Kaitiakitanga lens Mentions sustainability in general terms. Explains how kaitiakitanga affects the design choice. Shows nuanced judgement about long-term, community, and environmental impacts.
Recommendation quality Makes a simple recommendation. Justifies a recommendation with evidence. Builds a well-supported recommendation that anticipates trade-offs.

Support and extension

Support

  • Pre-select two energy systems rather than all options.
  • Use the sentence starters and comparison frame as a structured speaking/writing guide.
  • Model one full example before releasing groups to design their own recommendation.

Extend

  • Ask students to cost or compare two designs for the same site.
  • Bring in local energy or council data and ask students to critique real proposals.
  • Have students write an individual recommendation letter to a school or community leader.

What to prepare before lesson one

  • Print or open the linked handouts below.
  • Choose one local or regional energy example to anchor discussion.
  • Decide whether students will present orally, in writing, or as a visual design pitch.

What good progress looks like by the end of lesson one

Students can explain at least one renewable energy option clearly, identify one local trade-off, and show that kaitiakitanga changes how they judge a strong design solution.

Resources and linked scaffolds

Curriculum alignment