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Ecology i: The Earth System Course
More than 2 million students worldwide

Ecology i: The Earth System Course

Understand how Earth functions as a single, interconnected system — from ocean currents to soil microbes to atmospheric circulation. This course builds the scientific foundation to analyse ecological processes at a planetary scale. Whether you're entering environmental science or deepening existing knowledge, you'll gain the frameworks that define modern Earth system ecology.

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What you will learn:

  • Analyse matter cycling, energy flow, and feedbacks across Earth's major spheres.

  • Explain atmospheric circulation, climate variability, and their effects on global ecosystems.

  • Understand hydrological processes, ocean dynamics, and freshwater distribution worldwide.

  • Connect soil formation, nutrient cycling, and decomposition to terrestrial ecosystem productivity.

  • Characterise major terrestrial and marine biomes using climate envelopes and ecological function.

  • Apply the planetary boundaries framework to assess sustainability and global change trajectories.

How you study in practice Ecology i: The Earth System Course

How you practise Ecology i: The Earth System Course

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Course content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Earth System Science

  • Lesson 1 • Systems Thinking in Ecology

    Applies systems thinking tools to ecological problems. Prepares students to model complex interactions throughout the course.

  • Lesson 2 • Timescales of Earth Processes

    Distinguishes geological, ecological, and human timescales of change. Helps students contextualise rates of environmental transformation.

  • Lesson 3 • Defining the Earth System

    Introduces the four major spheres and their boundaries. Provides the structural vocabulary needed for all subsequent system-level analysis.

  • Lesson 4 • Matter Cycling Fundamentals

    Covers the movement of elements through reservoirs and fluxes. Establishes biogeochemical cycling as a unifying concept for ecology.

  • Lesson 5 • Energy Flow Through the System

    Examines solar radiation, albedo, and heat redistribution as drivers of Earth processes. Connects energy budgets to climate and ecological patterns.

Chapter 2See details

Atmosphere and Climate Dynamics

  • Lesson 1 • Precipitation Patterns and Water Availability

    Maps global precipitation distribution and its ecological consequences. Connects atmospheric dynamics to terrestrial and aquatic ecosystems.

  • Lesson 2 • Global Atmospheric Circulation

    Explains Hadley, Ferrel, and polar cells and their effects on precipitation. Links circulation patterns to biome distribution.

  • Lesson 3 • Climate Variability and Oscillations

    Covers ENSO, PDO, and other multi-year climate cycles. Demonstrates how natural variability affects ecosystem productivity and species distributions.

  • Lesson 4 • Paleoclimate and Long-Term Change

    Reconstructs past climates using ice cores, pollen, and sediment records. Provides baseline context for evaluating modern climate trajectories.

  • Lesson 5 • Atmospheric Composition and Structure

    Describes vertical layers, trace gases, and their ecological roles. Grounds climate discussions in atmospheric physics.

Chapter 3See details

The Hydrosphere and Water Cycle

  • Lesson 1 • Wetlands and Inland Water Bodies

    Examines lakes, ponds, and wetlands as biogeochemical hotspots. Highlights their disproportionate ecological and carbon-cycling importance.

  • Lesson 2 • Ocean Circulation and Marine Ecology

    Covers thermohaline circulation, upwelling, and their effects on marine productivity. Links ocean dynamics to global heat and carbon distribution.

  • Lesson 3 • River Systems and Watershed Ecology

    Analyses watershed structure, river continuum, and nutrient spiraling. Demonstrates how catchment land use shapes aquatic ecology.

  • Lesson 4 • Global Water Distribution

    Quantifies freshwater and saltwater reservoirs and their accessibility. Establishes water scarcity as a fundamental ecological constraint.

  • Lesson 5 • Hydrological Cycle Processes

    Traces evaporation, transpiration, condensation, and runoff pathways. Connects atmospheric and terrestrial water fluxes.

Chapter 4See details

Soils, Lithosphere, and Nutrient Cycling

  • Lesson 1 • Soil Biota and Decomposition

    Examines microbial communities, fungi, and invertebrates driving decomposition. Connects soil biodiversity to nutrient mineralisation rates.

  • Lesson 2 • Soil Physical and Chemical Properties

    Covers texture, structure, pH, and cation exchange capacity. Links soil chemistry to nutrient availability and plant community composition.

  • Lesson 3 • Geological Processes and Landscape Ecology

    Connects tectonics, volcanism, and erosion to long-term nutrient supply. Shows how geological history shapes regional ecological patterns.

  • Lesson 4 • Nitrogen and Phosphorus Cycling in Soils

    Details fixation, nitrification, denitrification, and phosphorus weathering. Explains nutrient limitation as a control on ecosystem productivity.

  • Lesson 5 • Soil Formation and Classification

    Explains pedogenesis factors and major soil orders. Establishes soil as a living system shaped by climate, organisms, and parent material.

Chapter 5See details

Biomes and Terrestrial Ecosystems

  • Lesson 1 • Dryland and Arctic Ecosystems

    Analyses deserts, shrublands, tundra, and polar systems under extreme abiotic stress. Highlights adaptations and vulnerability to warming.

  • Lesson 2 • Climate Envelopes and Biome Classification

    Uses temperature and precipitation to define biome boundaries. Introduces Whittaker diagrams and climate-vegetation relationships.

  • Lesson 3 • Temperate and Boreal Ecosystems NO_CHANGES

    Covers deciduous forests, grasslands, and taiga ecology. Connects seasonal phenology and disturbance regimes to carbon storage.

  • Lesson 4 • Tropical and Subtropical Ecosystems

    Examines rainforests, savannas, and dry forests as high-productivity systems. Analyses nutrient cycling, canopy structure, and biodiversity patterns.

  • Lesson 5 • Primary Productivity and Carbon Budgets

    Quantifies gross and net primary productivity across biomes. Links photosynthesis, respiration, and decomposition to ecosystem carbon balance.

Chapter 6See details

Marine and Coastal Ecosystems

  • Lesson 1 • Marine Primary Production

    Examines phytoplankton, macroalgae, and chemosynthetic production. Connects nutrient availability and light to ocean productivity patterns.

  • Lesson 2 • Coral Reefs and Coastal Habitats

    Examines coral reef ecology, mangroves, and seagrass beds as biodiversity hotspots. Highlights their carbon storage and coastal protection functions.

  • Lesson 3 • Marine Food Webs and Trophic Dynamics

    Traces energy from primary producers through zooplankton to apex predators. Analyses trophic efficiency and top-down vs. bottom-up control.

  • Lesson 4 • Ocean Zones and Physical Structure

    Defines pelagic, benthic, and intertidal zones by light, pressure, and temperature. Establishes the physical template for marine ecological communities.

  • Lesson 5 • Ocean Carbon Cycle and Acidification

    Details the biological and solubility pumps and ocean acidification chemistry. Connects marine carbon cycling to atmospheric CO2 regulation.

Chapter 7See details

Biodiversity, Ecosystem Function, and Services

  • Lesson 1 • Biodiversity Loss and Extinction Dynamics

    Analyses current extinction rates, drivers, and cascading effects. Frames biodiversity loss as an Earth system perturbation with feedback consequences.

  • Lesson 2 • Biodiversity and Ecosystem Functioning

    Reviews experimental evidence linking diversity to productivity and stability. Demonstrates complementarity and insurance effects as mechanisms.

  • Lesson 3 • Measuring and Describing Biodiversity

    Introduces alpha, beta, and gamma diversity metrics and species-area relationships. Provides quantitative tools for comparing biodiversity across scales.

  • Lesson 4 • Drivers of Biodiversity Patterns

    Explains latitudinal gradients, island biogeography, and disturbance effects. Connects evolutionary history and abiotic filters to diversity patterns.

  • Lesson 5 • Ecosystem Services Framework

    Classifies provisioning, regulating, cultural, and supporting services. Connects ecological function to human well-being and resource management.

Chapter 8See details

Global Change and Earth System Futures

  • Lesson 1 • Climate Change Impacts on Ecosystems

    Examines range shifts, phenological mismatches, and coral bleaching as documented responses. Connects warming trajectories to ecosystem tipping points.

  • Lesson 2 • Sustainability Pathways and Restoration

    Evaluates nature-based solutions, ecosystem restoration, and emission reduction strategies. Connects Earth system science to actionable sustainability decisions.

  • Lesson 3 • Planetary Boundaries Framework

    Introduces the nine planetary boundaries and their current status. Provides a systems-level tool for evaluating safe operating space for humanity.

  • Lesson 4 • Anthropogenic Drivers of Global Change

    Quantifies land use change, fossil fuel emissions, and nitrogen deposition as primary human pressures. Establishes the Anthropocene as a distinct Earth system state.

  • Lesson 5 • Earth System Feedbacks and Tipping Points

    Analyses permafrost, ice-albedo, and Amazon dieback feedbacks. Demonstrates how crossing tipping points can trigger irreversible system transitions.

Certification

Your valid completion certificate

This course is for you:

  • Environmental studies student: building a rigorous scientific core before graduate school.

  • Conservation practitioner: seeking deeper theory behind the fieldwork they already do.

  • Science journalist: needing accurate Earth system frameworks to report credibly.

  • Sustainability analyst: wanting ecological grounding to strengthen professional recommendations.

  • Curious naturalist: ready to move beyond observation into mechanistic planetary understanding.

  • Policy researcher: connecting ecological science to evidence-based environmental governance.

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