Peatlands are wet lands. 
Peatlands are very wet lands. 

Peatlands are special, wet lands. They are made of thick layers of peat. Peat comes from dead plants that do not rot away. This happens because the plants stay under water. Without much air, the plants cannot fully break down.
Peatlands are huge carbon stores. They hold more carbon than all other plants and forests. This helps keep our planet cool. 

Peatlands are found all over the world. Many are in the cold North. Some are in the warm tropics. In places like Indonesia, they are very large. 
Peatlands are very special types of wetlands. They are made of thick layers of organic matter called peat. This peat comes from dead plants that do not rot away completely.
How does a peatland grow? It often starts when a forest becomes waterlogged or a lake fills with plants. 

Scientists study these lands to learn about our planet. Peatlands are great for studying the past because they hold many clues. They can trap pollen, metals, and even tiny fossils from long ago. Experts use a method called carbon-14 dating to find out how old the peat is. 
Peatlands are incredibly important for the Earth's climate. They are the largest natural carbon store on land. They cover about 3 million square kilometers around the world. 

You can find peatlands in many different places. They are very common in the cold Northern Hemisphere. Large areas of Canada, Russia, and Northern Europe are covered in them. 

Peatlands are unique wetland ecosystems defined by thick layers of organic matter known as peat.
The formation of a peatland follows a specific biological and physical sequence. It often begins through paludification, where mineral soil forests become waterlogged. It can also happen through terrestrialisation, which is the process of a lake filling with organic matter. Once the peat begins to accumulate, it can actually raise the ground surface. This accumulation can eventually lift the land above the surrounding landscape. A peatland that is actively growing new peat is called a mire. 
Ecologists classify mires into several distinct types based on their water sources. A bog is an ombrotrophic mire, meaning it receives all its water from precipitation like rain or snow. Because rain is low in minerals, bogs are always acidic and nutrient-poor. In contrast, a fen is a minerotrophic mire. Fens receive water from groundwater or surrounding mineral soil. This allows fens to be neutral or alkaline and can make them nutrient-rich. Some peatlands also include swamps, which are characterized by a forest canopy or dense vegetation like papyrus. 
Peatlands are critical to the Earth's climate because they are the largest natural carbon store on land. Although they cover only about 3% of the Earth's surface, they store over 600 gigatons of carbon. This is more carbon than is stored in all other vegetation types, including all the world's forests combined. 
These ecosystems are distributed globally, but their characteristics change with the climate. The largest concentration of peatlands, making up about 64% of the total, is in the Northern Hemisphere. These are found in temperate, boreal, and subarctic zones. In polar regions, mires are often shallow due to slow accumulation rates. In the tropics, peatlands are rarer but can be massive. For example, Indonesia contains about 24 million hectares of peatland. The Central Congo Basin also holds the world's largest tropical mire, covering 145,500 square kilometers. 
Human activity and climate change pose significant threats to these environments. Many peatlands are drained for agriculture, such as the conversion of land for palm oil plantations. 

Scientists also use peatlands as a window into the Earth's history. Because peat accumulates in layers, it traps pollen, metals, and macrofossils. Researchers can use carbon-14 dating to determine the exact age of these layers. This allows them to reconstruct past climates and study historical pollution levels. However, if these lands are destroyed by dredging, this irreplaceable scientific record is lost forever. Understanding the complex chemistry of peat, such as its high cation-exchange capacity, remains vital for protecting these global carbon sinks. 
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