🇸🇪 Sweden's Sources of N₂O Emissions

Sweden's Sources of N2O Emissions

Key Insights

Agriculture Dominates Over Time

Agriculture has been Sweden's largest source of nitrous oxide, contributing roughly 60% of national emissions and around 4% of the country's overall warming impact. After a marked rise from the late 1930s to early 1960s, agricultural emissions settled into a long period of stability, hovering around 4 megatonnes with only modest year‑to‑year variation since the early 1960s.

Energy Rose Then Eased

Energy-related emissions climbed through the post‑war era, with faster growth from the mid‑1980s to around the turn of the century, peaking at just over 1 megatonne. Since the early 2000s they have trended downward, easing to well under 1 megatonne by the early 2020s.

Industrial And Other Declines

Industry was a minor source before the 1950s, then surged through the 1960s to nearly 2 megatonnes, followed by a long, steady decline from the late 1960s to well below 1 megatonne today. "Other" sources were relatively steady near 0.5 megatonnes until the mid‑1990s and have since moved down toward roughly 0.2 megatonnes.

Outlook For Major Sources

The current picture shows agriculture broadly stable, while energy, industry, and other sources are on declining paths. Sweden's recent progress is concentrated outside agriculture; sustaining those declines and bending the agricultural plateau downward will determine whether national nitrous oxide emissions continue to fall.

Background

The chart shows a national breakdown by source of the yearly nitrous oxide (N2O) emissions from human activities and processes, expressed as weight in megatonnes (Mt). Human-induced emissions are the main driver of the increasing atmospheric nitrous oxide that is warming our planet. The sources of human nitrous oxide emissions are

  • Agriculture
  • Energy
  • Industry
  • Waste
  • Other

Agriculture

Emissions related to agriculture are mainly from the use of synthetic fertilizers and manure management.


Synthetic fertilizer, used for agricultural processes, contains a lot of nitrogen. That nitrogen in the soil reacts and causes considerable N2O emissions. The use of excess fertilizer, meaning more fertilizer than the plants can use to grow, causes even higher relative emissions. Applying the right amount of fertilizer at the right time can reduce N2O emissions. There are many technical solutions to reduce emissions while keeping, or even increasing, agricultural yields.


When manure is left on the field or otherwise managed in dry processes, it emits considerable amounts of nitrous oxide. Manure can be managed by wet processes, which reduces nitrous oxide emissions but increases methane emissions. Some technical solutions focus on modifying the animal feed to reduce the nitrogen in the manure, thereby reducing nitrous oxide emissions.

Energy, Industry, Waste, and Other

All non-agricultural categories together have much lower emissions than agricultural emissions alone.


N2O emissions related to energy are almost all from the combustion of fossil fuels. For example, the combustion of fossil fuels in power plants, cars, and airplanes not only causes CO2 emissions but also emits nitrous oxide (N2O). Any advances to reducing fossil fuel dependency will thus also reduce nitrous oxide emissions.


Most industry-related emissions are from the chemical industry for producing fertilizer, nylon, and similar products. Technologies are available to reduce emissions in these processes.

Nitrous oxide emissions from waste come from, for example, wastewater treatment and landfills.

Wikipedia: Nitrous oxide
IPCC: AR6, 5.16 Anthropogenic nitrous oxide (N2O) emissions

Units and Measures

N2O emissions are expressed in the total weight in megatonnes per year. 1 Megatonne is equal to 1 million tonnes.

Wikipedia: Megatonne
Wikipedia: Global warming potential

About the Data

The last available year in all the emission datasets is 2023. N2O emissions come from the PRIMAP-Hist dataset. It is a rich dataset that combines several published sources to create a historical emissions time series for various greenhouse gases.

The Key Insights paragraph was created using a large language model (LLM) in combination with our data, historic events, and a structured approach for best accuracy by separating the context generation from the interpretation and narrative.

Data Sources

PRIMAP-hist The PRIMAP-hist national historical emissions time series (1750-2023)
Update cycle: Every few monthsDelay: Less than 1 yearCredits: Gütschow, Johannes; Busch, Daniel; Pflüger, Mika (2024): The PRIMAP-hist national historical emissions time series (1750-2023) v2.6. Zenodo.

Sweden's Sources of N₂O Emissions