Rocks turn into soil. 
Rocks turn into soil over a long time. 


Soil forms through a set of steps called pedogenesis. 

Weathering breaks the rock down. Physical weathering happens when rocks crack or split. This can happen when water freezes in cracks. Chemical weathering changes the minerals. Water and heat help this happen. In warm, wet places, rocks break down fast. In dry deserts, they change very slowly.
Living things help too. Tiny microbes like bacteria and fungi live in the soil. They eat nutrients and make acids. These acids help break down rocks. Plant roots also help by growing into cracks. As plants and animals die, they add organic matter. This builds up thick layers called soil horizons. 
Soil formation is a way that the Earth creates new layers of ground. This process is called pedogenesis. It is how rocks and minerals turn into the soil we see today. 
To make soil, several things must happen in a specific order. It starts with parent material, which is the original rock or mineral. 
Many different things can act as the starting material for soil. Some materials are residual, meaning they stay in one place. These soils form from the bedrock directly underneath them. Most other soils come from transported materials. These are moved many miles by wind, water, ice, or gravity. Wind can move fine sand to create loess soils. 
Five main factors work together to shape every soil. These factors are climate, organisms, relief, parent material, and time. You can remember them using the word CLORPT. 
Think of soil formation like a slow building project. The rocks are the raw bricks. The weather and water are the tools that break the bricks into smaller pieces. 
Soil formation, a process known as pedogenesis, is the complex way that the Earth creates the ground we walk on. It is regulated by the effects of place, environment, and history. Through biogeochemical processes, soil can both create and destroy order. This leads to the development of distinct layers called soil horizons. These horizons are distinguished by differences in color, structure, texture, and chemistry. Scientists study this through pedology, which is the study of soil in its natural environment. Understanding pedogenesis helps us understand soil distribution in both current and past geologic periods.

The process of soil genesis begins with the weathering of freshly accumulated parent material. Weathering is the breakdown of rock into smaller pieces. This happens through physical weathering and chemical weathering. Physical weathering involves the disintegration of rock. For example, temperature changes cause rocks to expand and contract. This can split them along lines of weakness. Water can enter these cracks and freeze, causing the material to split further. Cycles of wetting and drying also cause particles to be abraded into finer sizes.
Chemical weathering involves the decomposition of minerals. This process is a function of mineral solubility. The rate of decomposition can double with every 10 °C rise in temperature. Water is essential for these chemical changes to occur. Microbes like bacteria and fungi contribute by excreting organic acids. These acids help break down minerals. Several specific chemical processes occur here. Hydrolysis is the transformation of minerals into polar molecules by splitting water. Carbonation occurs when carbon dioxide dissolves in water to form carbonic acid. This acid can transform calcite into more soluble calcium bicarbonate. Other processes include hydration, oxidation, and reduction.

All soil begins with parent material, which is the mineral source of the soil. This material can be rock of igneous, sedimentary, or metamorphic origin. Rocks provide almost all plant nutrients, except for nitrogen, hydrogen, and carbon. Parent materials are classified by how they were deposited. Residual materials are minerals that have weathered in place from primary bedrock. These soils have the same general chemistry as the rocks beneath them. Transported materials are moved by wind, water, ice, or gravity. For example, aeolian processes use wind to move silt and fine sand. This can form loess soils, which are 60 to 90 percent silt.

Water and ice also move massive amounts of material. Water-transported materials include alluvial deposits from flowing water and lacustrine deposits from lakes. Marine deposits are the beds of ancient seas revealed by land uplift. Glaciers move material to create terminal and lateral moraines. Gravity moves material down steep slopes to create colluvial material, such as talus cones. There is also cumulose material, which is organic matter that accumulates in place. This includes peat and muck soils. While peat can be sterile, muck soils can be very fertile due to high water tables.

Five classic factors are intertwined in the evolution of soil. These are parent material, climate, topography, soil organisms, and time. You can remember them using the acronym CLORPT. Climate is often the dominant factor. It includes variables like temperature and effective precipitation. Warm temperatures and abundant water maximize weathering and plant growth. In Sicily, the soil production rate from weathering is about 1/10 mm per year. In contrast, rocks in a desert may remain unaltered for millennia. Climate also influences the organic matter content by affecting how much carbon is fixed and how much is decomposed.
As soils mature, they develop deeper horizons. Topsoils deepen as humus accumulates from dead plants and microbes. This organic matter mixes with weathered minerals. Water also plays a role through leaching. Surplus water moves materials from upper layers to lower layers. This process is called eluviation. The movement of materials to lower layers is called illuviation. This can include the movement of clay particles and dissolved organic matter. This continuous cycle of weathering, deposition, and biological activity transforms raw rock into a complex, living system.
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