Tiny living things can find metal. They live in rocks. They help us get gold and copper. This helps keep our Earth clean. It is like magic! Do you like shiny metal?
Tiny living things can find metal. These small life forms live in rocks. They help us get gold and copper. They do this by eating parts of the rock. 

Biomining is a way to get metals from rocks using living things. Tiny living things like bacteria help this work. They can live in places with lots of iron or copper. These bacteria change the rocks to let metals out. This process is called bioleaching. 
One way to do this is called heap leaching. Workers grind rocks into small bits. They stack the rocks in big piles. They add a liquid to the pile. The liquid flows through the rocks. It picks up the metal as it moves. This liquid is called leachate. 
Biomining can even help the Earth. It can help clean up oil spills. This is called bioremediation. Scientists also think we could use it in space. We might use it to find water or oxygen on other worlds. 
Biomining is a way to get metals from rocks using living things. This method uses tiny organisms like bacteria to pull metals out of solid materials. It is a type of biohydrometallurgy, which is a way to refine ore using liquids. Today, it is often used to treat mining waste. This waste might contain iron, copper, zinc, or even gold. Biomining is seen as an environmentally friendly way to help traditional mining. It can also help us get more metal from low grade ore deposits. 
One common way this works is through a process called bioleaching. In heap bioleaching, workers grind rocks into very fine pieces. They stack these rocks into piles that are 2 to 10 meters high. These piles are sprayed with liquid to keep them wet. This liquid is called a lixiviant, which is an extractant. As it flows through the pile, it picks up the metals. This metal-rich liquid is called leachate. 
People have actually been using biomining for a very long time. In China, these techniques were used as early as the 6th or 7th century BC. During the Tang and Song dynasties, people used these methods to make copper. This helped China produce 1000 tons of copper every year. In the Middle Ages, miners in Portugal, Spain, and Wales used it too. They would flood deep mine shafts with leftover iron to get copper. They did not know about bacteria back then, so they thought it was alchemy.
Scientists began to understand the science behind this in the 1950s. In 1951, Kenneth Temple and Arthur Colmer wrote a famous paper. They found that a bacterium called Acidithiobacillus ferrooxidans loves iron. This bacterium can live in places with lots of copper and magnesium. In their tests, the bacteria grew faster when there was more iron. The bacteria also made the liquid very acidic. Even in this acid, the tiny organisms stayed healthy and grew. This discovery helped start industrial biomining in the 1960s.
Biomining can do much more than just find metals in rocks. It can be used for bioremediation, which means using life to clean up the environment. For example, it can help clean up oil spills. Scientists are also looking at using fungi to find gold in electronic waste. 
Biomining is a specialized field of biohydrometallurgy that uses living organisms to extract metals from ores and other solid materials. This process allows humans to recover valuable elements from complex sources that are otherwise difficult to process. Currently, the largest use for biomining is treating mining waste that contains iron, copper, zinc, and gold. It also offers a way to maximize yields from low-grade ore deposits, where the concentration of metal is very low. Because it can serve as a supplement to traditional mining, it is often viewed as a relatively environmentally friendly alternative.
The primary mechanism used in biomining is a process called bioleaching. This method often involves the use of ferric ions (Fe3+) to perform the oxidation of sulfide minerals. During this reaction, microorganisms promote chemical changes that release metals into a liquid solution. For example, when processing chalcopyrite, the bacteria help convert the mineral into copper ions, ferrous iron, and sulfur. The organisms used in these processes are highly specialized. They must be able to tolerate very high metal concentrations and a low pH, which means they thrive in highly acidic environments.
There are several distinct ways to perform bioleaching in industrial settings. One method is dump bioleaching, where waste rock is piled into massive mounds taller than 100 meters. These mounds are saturated with sulfuric acid to encourage mineral oxidation by the bacteria already present in the rock. A newer version is heap bioleaching. In this method, rocks are ground into a fine grain and stacked in much smaller piles, only 2 to 10 meters high. These heaps are well-irrigated to ensure oxygen and carbon dioxide reach the bacteria, and they are often inoculated with specific microbes. The liquid that flows out of the bottom is called leachate, which is rich in processed minerals. 
Another advanced method is in situ biomining. This involves flooding and inoculating fractured ore bodies while they are still underground. Once the bacteria are introduced, they begin leaching precious metals directly from the ore deposit. The metals are then extracted using a recovery well. This method is a viable replacement for traditional mining because it avoids the need to haul or smelt ore. By leaving the ore in the ground, it eliminates the need for waste rocks or mineral tailings on the surface. However, this method does face environmental challenges, such as the potential for groundwater contamination. 
Humans have been using biomining for centuries, even before they understood the science. In China, documented techniques were used as early as the 6th or 7th century BC. During the Tang and Song dynasties, copper production reached 1,000 tons per year using hydrometallurgical techniques. In the Middle Ages, miners in Portugal, Spain, and Wales discovered that flooding mine shafts with leftover iron helped them obtain copper. They did not know bacteria were responsible, so they viewed the process as alchemy. Modern science only began to explain this in 1951. Kenneth Temple and Arthur Colmer published a paper proving that the bacterium Acidithiobacillus ferrooxidans is an iron oxidizer. 
Biomining has specific, vital applications for different metals. For gold, biological pre-treatment uses microbes to dissolve minerals like arsenopyrite and pyrite. This exposes the gold that was trapped inside. In copper mining, Acidithiobacillus ferrooxidans is used to solubilize copper from sulfidic ores. Some specialized archaea, such as Sulfolobus metallicus, can even tolerate copper concentrations as high as 4%. Biomining was also used in Canada during the 1970s to extract additional uranium from mines that had already been exploited. In these cases, the bacteria help oxidize the uranium, making it easier to collect. 
Looking toward the future, the possibilities for biomining are expanding into new frontiers. Scientists are investigating the use of fungi, such as Aspergillus and Penicillium, to recover gold from electronic waste. There is also the exciting concept of space biomining. Space agencies believe this could allow astronauts to extract metals, minerals, water, and oxygen from extraterrestrial regolith, which is space soil. This could be part of a biological life support system (BLSS). Such a system would use microorganisms to break down waste and regolith to create a cyclical, regenerative environment for humans living in space. 
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