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Soil fertility

earth science Maturity 11-13

Good soil helps plants grow.

Soil Horizons.svg
Soil Horizons.svg
It has food and water. It also needs air. This helps the roots stay healthy. We need good soil for food. Do you like to dig in the dirt?

36 words

Good soil helps plants grow.

Soil Horizons.svg
Soil Horizons.svg
It must have food and water. It also needs air. This helps the roots stay healthy.

Plants need many things to stay strong. They need special bits of food from the ground. Tiny living things in the soil help too. They turn old plants into food.

Sometimes soil loses its good parts. This can happen if the land is used too much. If the top layer washes away, plants cannot grow well.

People can add food to the soil. This helps crops grow big and tall. We must take care of the land.

Healthy soil is a wonder for our world.

108 words

Soil fertility is the ability of soil to help plants grow.

Soil Horizons.svg
Soil Horizons.svg
Fertile soil provides plants with water and nutrients. It must also be free of toxic substances. These are things that can stop plants from growing.

Most soils have different layers. Scientists call these layers horizons. The top layer is the surface horizon. Below that is the subsoil. Deep down is the substratum.

Global soils map USDA.jpg
Global soils map USDA.jpg
Different parts of the world have different soil types.

Plants need three main nutrients to stay healthy. These are nitrogen, phosphorus, and potassium. Phosphorus is very important for young plants. It helps them grow and divide cells. Some soils lack these nutrients. People often add fertilizer to help. Fertilizer is a way to add more nutrients to the ground.

Sometimes soil loses its quality. This is called soil depletion. It can happen if the land is used too much. When topsoil is lost, crops may not grow well.

Desert East of Birdsville - panoramio (3).jpg
Desert East of Birdsville - panoramio (3).jpg
In some places, the soil is very dry and hard to farm. We must use good ways to take care of our land.

187 words

Soil fertility is the ability of soil to support plant growth.

Soil Horizons.svg
Soil Horizons.svg
It means the soil provides a good home and enough nutrients for plants. Healthy soil must also have enough water for the plants to use. It must stay free of toxic substances that could stop growth. For example, too much iron can cause nutrient toxicity. Good soil also needs the right depth for roots to grow. It needs good drainage so roots can breathe.
Global soils map USDA.jpg
Global soils map USDA.jpg
Most soils have layers called horizons. The top layer is the surface horizon, or A horizon. Below that is the subsoil, known as the B horizon. The bottom layer is the substratum, or C horizon. Some soils even have an organic layer called the O horizon.

Nutrients move through the soil in a constant cycle. This cycle involves moving between organic and inorganic forms. When tiny living things break down dead plants or waste, they release nutrients. This helpful step is called mineralization. However, tiny organisms also need nutrients to live and grow. Sometimes they use up the nutrients before plants can get them. This is called immobilization. Nitrogen is another important part of this cycle. Lightning strikes can turn nitrogen in the air into nitric oxide. In the ground, special bacteria also perform nitrogen fixation to help plants.

Plants need specific elements to stay strong and healthy. Nitrogen, phosphorus, and potassium are the three most important ones. Phosphorus is especially vital for young plants and cell division.

Desert East of Birdsville - panoramio (3).jpg
Desert East of Birdsville - panoramio (3).jpg
Because phosphorus is hard to find, scientists use the term "peak phosphorus." This refers to the time when the world's supply of rock phosphate begins to run out. In the U.S., this happened in 1988, and for the world in 1989. People often use fertilizers to add these missing elements back to the ground. Inorganic fertilizers work quickly because they are immediately bioavailable to plants. This means plants can take them up without any extra changes.

History shows how humans have changed the quality of soil. In the past, some groups in the Amazon created dark earth to help plants grow. However, other land practices have caused soil depletion. This happens when nutrients are removed and not replaced. In Colonial New England, settlers used fire to clear forests. They also let cattle graze too heavily on the land. These actions led to more erosion and lost topsoil. In the Great Plains of North America, about half of the original topsoil vanished after 1880. This area experienced a famous event called the Dust Bowl.

We can see how soil connects to our daily lives and the planet. Most commercial fertilizers list the amounts of nutrients they contain. For example, a 10-10-15 fertilizer has 10% nitrogen and 10% phosphorus. Some people use compost made from food waste to improve soil. This can work even better than using manure. We must be careful with how we use chemicals, though. Using too much inorganic fertilizer can cause water pollution. It can also disrupt the natural balance of the soil. Keeping soil healthy helps ensure we can grow food for a long time.

524 words

Soil fertility is the capacity of soil to sustain agricultural plant growth. It must provide a stable habitat for roots and produce consistent, high-quality yields. A fertile soil provides essential nutrients and water in the correct proportions. It must also be free of toxic substances, such as Fe2+, which can cause nutrient toxicity.

Soil Horizons.svg
Soil Horizons.svg
To understand soil, scientists study its layers, called horizons. The O horizon is an organic layer on the surface. The A horizon is the surface horizon, or topsoil. Below that is the B horizon, known as the subsoil. The C horizon is the substratum. Some soils have an E horizon, which shows a significant loss of minerals through a process called eluviation. Hard bedrock, which is not soil, is labeled as the R horizon.

Healthy soil requires several specific physical and chemical properties. There must be sufficient depth for roots to grow and retain water. Good internal drainage is necessary to allow for soil aeration, which helps roots breathe. Most plants prefer a soil pH between 5.5 and 7.0. The soil must also contain a range of microorganisms to support plant life. These tiny organisms help manage the constant cycling of nutrients between organic and inorganic forms. This cycle is a complex process that keeps the ecosystem functioning.

Nutrient cycling involves two main opposing processes: mineralization and immobilization. During mineralization, microorganisms decompose plant material and animal waste. This process releases inorganic nutrients into the soil solution for plants to use. However, microorganisms also need these nutrients to grow. They may take up the nutrients for their own biomass, which is called immobilization. This ties up the nutrients and makes them temporarily unavailable to plants. The balance between these two processes depends on the availability of organic carbon and major nutrients.

Plants require specific elements to grow, most notably nitrogen, phosphorus, and potassium. Phosphorus is a primary factor in fertility because it is essential for cell division and development. This is especially true for seedlings and young plants. Nitrogen and potassium are also required in substantial amounts. In the soil, nitrogen fixation can occur through lightning strikes or via free-living and symbiotic bacteria. Other processes, like denitrification, occur when bacteria act in anaerobic conditions, such as waterlogged soil.

Global soils map USDA.jpg
Global soils map USDA.jpg
Many nutrients, including potassium, are held by the soil through cation exchange. This is an electrostatic interaction between nutrients and the negatively charged clay or humus.

Humans often use fertilizers to manage these nutrient levels. Commercial fertilizers typically list the percentages of nitrogen, phosphorus, and potassium. For example, a 10-10-15 fertilizer contains 10% nitrogen, 10% available phosphorus (P2O5), and 15% water-soluble potassium (K2O). Inorganic fertilizers are often immediately bioavailable, meaning plants can take them up without modification. However, over-reliance on these chemicals can disrupt the natural nutrient balance. This can lead to the loss of organic matter and increased soil erosion. Additionally, water-soluble nitrate nitrogen can cause water pollution.

History shows that human activity has deeply impacted soil quality. In the Amazon, indigenous communities created dark earth to promote high fertility. Conversely, colonial practices often led to soil depletion. In Colonial New England, settlers used intensive burning and allowed cattle to graze heavily. These actions caused soil compaction and increased erosion. In the North American Great Plains, about one-half of the original topsoil disappeared after agricultural production began in the 1880s. This contributed to the Dust Bowl.

Desert East of Birdsville - panoramio (3).jpg
Desert East of Birdsville - panoramio (3).jpg
In the Southern United States, plantation owners often viewed the landscape as disposable. They engaged in mass deforestation and draining swamps, which left ecosystems fragile and eroded.

Managing soil fertility is a global challenge involving resource limits and environmental health. Phosphorus is a finite resource derived from rock phosphate. Because of its excessive use, scientists use the term "peak phosphorus" to describe the depletion of these reserves. The U.S. reached peak phosphorus in 1988, and the world reached it in 1989. Excessive phosphorus use also leads to eutrophication, a form of water pollution. To improve soil, people use conditioners like biochar or food waste compost. Maintaining the balance of nutrients and protecting the soil structure is essential for long-term food security.

691 words
🖼️ Images & Media (3)
File:Soil Horizons.svg
Soil Horizons.svg
File:Desert East of Birdsville - panoramio (3).jpg
Desert East of Birdsville - panoramio (3).jpg
File:Global soils map USDA.jpg
Global soils map USDA.jpg
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